Tag Isopentane

Price Trend of Isopentane in Recent Year

Isopentane Price in China Market

In the past year, the price of Isopentane products has been rising in the Chinese market. The lowest price is at the end of July 2021, which is about $1,200 / ton. By July 2022, the price of Isopentane has risen to $1,700 / ton. In July 2022, the price of Isopentane has been relatively stable, with a slight downward trend.

Pentane is unique among hydrocarbon solvents for it has high concentration of a single component. Our Pentane has a consistent composition and very high purity. Our Pentane isomers have very low level of aromatics and other impurities.

Junyuan Petroleum Group is the largest producer of Pentane and Pentane Blend in China. This manufacturer has a location in Dongying, Shandong, China, with 500 employees. Sales inquiry: info@junyuanpetroleumgroup.com
List of the Pentanes Available –
Isopentane/n-Pentane/Cyclopentane (95% to 99% Purity)
EPS Grade 50:50 / 60:40 / 70:30 / 80:20
CP:IP 60:40/ 70:30 / 75:25 / 80:20 (Cyclopentane:Isopentane)
Commercial Pentanes
For any other grade or blend please contact us. All types of Pentane can be delivered in bulk via road-tankers, ISO Tank containers and drums of 200 LTR.

-cat- Isopentane

The company is holding a video conference,Dongying Liangxin Petrochemical Technology Development Limited Company

The EMD Held a Quarterly Video Conference on Safety Management

The emergency management department held a quarterly Video Conference on centralized management of safety risks of hazardous chemicals

On July 29, the emergency management department held a quarterly video promotion meeting on the centralized management of safety risks of hazardous chemicals nationwide to report progress, analyze problems, exchange practices, strengthen measures, promote the implementation of key tasks, effectively prevent and control major safety risks, and create a stable safety environment for the success of the 20th CPC National Congress. Sunguangyu, member of the Party committee and vice minister of the emergency management department, attended the meeting and delivered a speech. Qichunxiao, the general manager of the group, and Qiao Huijie, the deputy general manager and director of safety and environmental protection, attended the video conference at the venue of the agricultural high-tech division in the Yellow River Delta.

However, from the mid-term evaluation results of centralized governance, there are still problems of uneven progress between regions, lagging progress of some special projects and low quality.

The meeting emphasized that we should have a clear understanding of the severe situation faced by the current safe production of hazardous chemicals and strengthen the sense of mission and urgency of doing a good job in centralized management. We should adhere to the problem orientation, anchor the goal of centralized governance, and make every effort to overcome difficulties. We should quickly wake up, be nervous, and take action. If there is a deviation in the direction of work, we should correct it in time. If the progress of work lags behind, we should pay close attention to make-up lessons, and accelerate the completion.

The meeting required that we should adhere to both the symptoms and root causes, accurately grasp the relationship between major risk prevention and control and centralized governance, promote major risk prevention and control and centralized governance as a whole, and prevent “two skins”. We should organically integrate centralized management and annual key work, integrate the requirements of centralized management tasks and measures into the major inspection of production safety and special safety actions, strengthen supervision and inspection and open and secret visits, do a good job in production safety in summer and flood seasons, strictly implement the main responsibility of enterprises, and resolutely prevent and contain major accidents and accidents with great impact.

At the meeting, Beijing, Liaoning, Zhejiang, Ningxia and other four provinces and CNPC made exchange speeches respectively, and the heads of relevant departments and bureaus, institutions and industry associations of the emergency management department and the main heads of relevant central enterprise safety management departments attended the meeting at the main venue; The heads of the emergency management departments at the provincial, municipal and county levels, as well as the relevant chemical parks and the main heads of enterprises attended the meeting at the branch venue.

Dongying Liangxin Petrochemical Technology Development Limited Company

The company is participating in the enterprise forum,Dongying Liangxin Petrochemical Technology Development Limited Company

The Group of Companies Participated in the Symposium on a Financial Project

The Junyuan Petroleum Group of Companies participated in the Symposium on project docking between financial leasing companies and small and medium-sized enterprises

On the morning of July 29, Dongying local financial supervision bureau held a symposium on the project docking between financial leasing companies and small and medium-sized enterprises. At the symposium, a number of financial leasing companies in Shandong Province were invited to carry out project face-to-face exchanges and interactions with small and medium-sized enterprises to carry out financing docking. Che Xiaojing, executive deputy general manager of the asset management company, attended the meeting and introduced the company’s projects.

The meeting pointed out that all financial leasing companies should take serving the real economy as the starting point and foothold, put forward reasonable financing plans and suggestions according to the financing needs of enterprises, help enterprises finance, and achieve steady development in the process of promoting local economic development. Small and medium-sized enterprises should further understand and be familiar with the financing method of financial leasing, effectively use financial leasing to alleviate capital problems, take the initiative to strengthen the connection with financial leasing companies, and invite financial leasing companies with promising cooperation to visit the enterprise on the spot to strive for cooperation.

Dongying Liangxin Petrochemical Technology Development Limited Company
Dongying Junyuan Petrochemical Technology Development Limited Company

Normal Pentane, Isopentane and Cyclopentane Blends

Pentane

We offer a large range of flammable and non-flammable blowing agents for Polyurethane (PU), Polystyrene (EPS, XPS) and Polyethelyne (PE) foams, which include liquids and blends.

Blowing Agent of Expendable Polystyrene, Polyurethane

BLENDS

With know how in formulating, handling and packaging blowing agents, we can also offer special blends such as :

n-Pentane/Isopentane
Cyclopentane/Isopentane
Cyclopentane/n-Pentane
Cyclopentane/Isopentane/n-Pentane

Blowing Agents/Pentane Blends

ISOPENTANE 70%, CYCLOPENTANE 30%
ISOPENANE 50%, CYCLOPENANE 50%
ISOPENTANE 30%, CYCLOPENTANE 70%
ISOPENANE 25%, CYCLOPENANE 75%
ISOPENTANE 20%, CYCLOPENTANE 80%
ISOPENANE 15%, CYCLOPENIANE 85%
ISOPENANE 10%, CYCLOPENANE 90%

Blowing Agents/Pentane Blends

ISOPENTANE 15%, NORMAL PENTANE 85%
ISOPENTANE 20%, NORMAL PENTANE 80%
ISOPENTANE 25%, NORMAL PENTANE 75%
ISOPENANE 30%, NORMAL PENANE 70%
ISOPENANE 40%, NORMALPENANE 60%
ISOPENANE 45%, NORMALPENANE 65%
ISOPENANE 50%, NORMALPENIANE 50%
ISOPENTANE 70%, NORMAL PENTANE 30%
ISOPENANE 75%, NORMAL PENANE 25%

PACKAGING

We offer a range of packaging from a bulk of 20 tonnes to a 1 litre sample.

BULK – up to 20 tonnes
CONTAINERS – 20″ GP container, 40″ GP container
DRUMS – 200 litres, 125KG, up to 150 KG
ISO Tanks – 14.5 MT, up to 17 MT
SAMPLE – 1 litre

Pentane Formula, Properties, Uses and Isomers

Pentane – Thermophysical Properties

Chemical, physical and thermal properties of pentane, also called n-pentane. Phase diagram included.

Physical Properties The boiling points of the pentane isomers range from about 9 to 36 °C. As is the case for other alkanes, the more branched isomers tend to have lower boiling points.

Usually, n-Pentane is used as a refrigeration or air conditioning substance, effectively replacing substances such as fluorinated hydrocarbons and ammonia. Here are some of its potential uses: refrigerant R601, non-polar solvent polyethylene process medium, how to use Isopentane? Isopentane is widely used. Firstly, it is an important refrigerant, which is used as the mixed refrigerant component of condensation inducer and LNG in LLDPE unit of olefin plant; Used for blending octane number of oil products;

Usage: isopentane is widely used. First, it is an important refrigerant of olefin unit, condensation inducer of LLDPE unit and LNG mixed refrigerant components; Used for blending oil octane number; It is widely used in organic synthesis reactions and the separation and purification of organic compounds; Secondly, isopentane dehydrogenation can be made of isoprene and isoprene, and isopentanol is obtained by chlorination and hydrolysis. It is also an important raw material for organic synthesis. Isopentane can also be used with n-pentane in EPS (expandable polystyrene) blowing agent, or with cyclopentane as rigid polyurethane blowing agent. It is mainly used in organic synthesis and also as a solvent.

Cyclopentane, as a blowing agent in Polyurethane (PU) foams, is the most important raw material for high-performance insulation in refrigerators. 

Pentane, C5H12, is a clear colorless liquid with a petroleum-like odor. It belongs to the organic class alkanes, and is naturally present in crude oils and condensates. It is a component of some fuels and is employed as a specialty solvent in the laboratory.

The boling point 36°C/97°F, and the vapors are heavier than air. Both the liquid an the vapor are flammable.

The phase diagram of pentane is shown below the table.

Chemical, physical and thermal properties of pentane:
Values are given for liquid at 25oC /77oF / 298 K and 1 bara, if not other phase, temperature or pressure given.

Property Value Unit Value Unit Value Unit Value Unit
Autoignition temperature 533 K 260 °C 500 °F
Boiling Point 309.2 K 36.06 °C 96.9 °F
Critical density 3.22 mol/dm3 232 kg/m3 0.450 slug/ft3 14.5 lb/ft3
Critical pressure 3.36 MPa=MN/m2 33.6 bar 33.2 atm 487 psi=lbf/in2
Critical temperature 469.8 K 196.7 °C 386.0 °F
Critical volume 311 cm3/mol 0.00431 m3/kg 2.22 ft3/slug 0.0690 ft3/lb
Density 8606 mol/m3 620.9 kg/m3 1.205 slug/ft3 38.76 lb/ft3
Flammable, gas and liquid yes
Flash point 224 K -49 °C -56 °F
Gas constant, individual, R 115.2 J/kg K 0.03201 Wh/(kg K) 689.1 [ft lbf/slug °R] 21.42 [ft lbf/lb °R]
Gibbs free energy of formation (gas) -8 kJ/mol -111 kJ/kg -48 Btu/lb
Heat (enthalpy) of combustion (gas) -3535 kJ/mol -48996 kJ/kg -21.1 Btu/lb
Heat (enthalpy) of combustion (liquid) -3509 kJ/mol -48636 kJ/kg -20.9 Btu/lb
Heat (enthalpy) of formation (gas) -147.0 kJ/mol -2037 kJ/kg -876 Btu/lb
Heat (enthalpy) of formation (liquid) -173 kJ/mol -2398 kJ/kg -1031 Btu/lb
Heat (enthalpy) of fusion at -202 °F/-130°C 8.4 kJ/mol 116 kJ/kg 50.05 Btu/lb
Heat (enthalpy) of sublimation, at -202°F/-130°C 42 kJ/mol 582 kJ/kg 250 Btu/lb
Heat (enthalpy) of evaporation 26.4 kJ/mol 366 kJ/kg 157 Btu/lb
Heat capacity, Cp (gas) 120.0 J/mol K 1.66 kJ/kg K 0.397 Btu/lb°F or cal/g K
Specific heat, Cp (liquid) 168.0 J/mol K 2.33 kJ/kg K 0.556 Btu/lb°F or cal/g K
Specific heat, Cv (liquid) 125.0 J/mol K 1.73 kJ/kg K 0.414 Btu/lb°F or cal/g K
Ionization potential 10.34 eV
log KOW (Octanol/Water Partition Coefficient) 3.39
Melting point 143.48 K -129.7 °C -201.4 °F
Molecular Weight 72.149 g/mol 0.15906 lb/mol
Solubility in water, at 25°C 0.038 mg/ml
Sound velocity 1012 m/s 3319 ft/s 2267 mi/h
Specific Gravity (gas) (relativ to air) 2.48
Specific Gravity (liquid) (relativ to water) 0.63
Specific Heat Ratio (gas) – CP/CV 1.09
Specific Heat Ratio (liquid) – CP/CV 1.34
Specific Volume 0.0001162 m3/mol 0.0016106 m3/kg 0.8300514 ft3/slug 0.0257988 ft3/lb
Standard molar entropy, S° (gas) 348 J/mol K 4.82 kJ/kg K 1.15 Btu/lb °F
Standard molar entropy, S° (liquid) 263 J/mol K 3.65 kJ/kg K 0.87 Btu/lb °F
Surface tension 16.0 dynes/cm 0.016 N/m
Thermal Conductivity 0.111 W/m°C 0.064135 Btu/hr ft °F
Triple point pressure 7.63*10-8 MPa=MN/m2 7.63*10-7 bar 7.53*10-7 atm 1.11*10-5 psi=lbf/in2
Triple point temperature 143.5 K -129.7 °C -201.46 °F
Vapor (saturation) pressure 0.0685 MPa=MN/m2 514.0 mm Hg 0.6762 atm 9.94 psi=lbf/in2
Viscosity, dynamic (absolute) 0.2224 cP 149.4 [lbm /ft s*10-6] 4.64 [lbf s/ft2 *10-6]
Viscosity, kinematic 0.358 cSt 3.9 [ft2/s*10-6]

Density and specific weight of liquid pentane at varying temperature and atmospheric pressure, SI and Imperial units:

Density units conversion of Pentane:

kilogram/cubic meter [kg/m3] = gram/liter [g/l], kilogram/liter [kg/l] = gram/cubic centimeter [g/cm3]= ton(metric)/cubic meter [t/m3], once/gallon(US liquid) [oz/gal(US liq)] pound/cubic inch [lb/in3], pound/cubic foot [lb/ft3], pound/gallon(UK) [lb/gal(UK)], pound/gallon(US liquid) [lb/gal(US liq)], slug/cubic foot [sl/ft3], ton(short)/cubic yard [ton(short)/yd3], ton(long)/cubic yard [yd3]

  • 1 g/cm3 = 1 kg/l = 1000 kg/m3 = 62.428 lb/ft3 = 0.03613 lb/in3 = 1.9403 sl/ft3 = 10.0224 lb/gal(UK) = 8.3454 lb/gal(US liq) = 0.5780 oz/in= 0.7525 ton(long)/yr3
  • 1 g/l = 1 kg/m3 = 0.001 kg/l = 0.000001 kg/cm3 = 0.001 g/cm3 = 0.99885 oz/ft3  = 0.0005780 oz/in3 = 0.16036 oz/gal(UK) = 0.1335 oz/gal(US liq) = 0.06243 lb/ft3 = 3.6127×10-5 lb/in3 = 1.6856 lb/yd3 = 0.010022 lb/gal(UK) = 0.0083454 lb/gal(US liq) = 0.0007525 ton(long)/yd= 0.0008428 ton(short)/yd3
  • 1 kg/l = 1 g/cm3 = 1000 kg/m3 = 62.428 lb/ft3 = 0.03613 lb/in3 = 1.9403 sl/ft3 = 8.3454 lb/gal(US liq) = 0.5780 oz/in= 0.7525 ton(long)/yr3
  • 1 kg/m3 = 1 g/l = 0.001 kg/l = 0.000001 kg/cm3 = 0.001 g/cm3 = 0.99885 oz/ft3  = 0.0005780 oz/in3 = 0.16036 oz/gal(UK) = 0.1335 oz/gal(US liq) = 0.06243 lb/ft3 = 3.6127×10-5 lb/in3 = 1.6856 lb/yd3 = 0.010022 lb/gal(UK) = 0.008345 lb/gal(US liq) = 0.0007525 ton(long)/yd = 0.0008428 ton(short)/yd
  • 1 lb/ft3 = 27 lb/yd3 = 0.009259 oz/in= 0.0005787 lb/in= 16.01845 kg/m3 = 0.01602 g/cm3  = 0.1605 lb/gal(UK) = 0.1349 lb/gal(US liq) = 2.5687 oz/gal(UK) = 2.1389 oz/gal(US liq) = 0.01205 ton(long)/yd3 = 0.0135 ton(short)/yd3
  • 1 lb/gal(UK) = 0.8327 lb/gal(US liq) = 16 oz/gal(UK) = 13.323 oz/gal(US liq) = 168.179 lb/yd3 = 6.2288 lb/ft3 = 0.003605 lb/in3 = 0.05767 oz/in = 99.7764 kg/m3 = 0.09977 g/cm3  = 0.07508 ton(long)/yd3 = 0.08409 ton(short)/yd3
  • 1 lb/gal(US liq) = 1.2009 lb/gal(UK) = 19.215 oz/gal(UK) = 16 oz/gal(US liq) = 201.97 lb/yd3 = 7.4805 lb/ft3 = 0.004329 lb/in3 = 0.06926 oz/in = 119.826 kg/m3 = 0.1198 g/cm3  = 0.09017 ton(long)/yd3 = 0.1010 ton(short)/yd3
  • 1 lb/in3 = 1728 lb/ft3 = 46656 lb/yd3 = 16 oz/in= 27680 kg/m3 = 27.680 g/cm3  = 277.419 lb/gal(UK) = 231 lb/gal(US liq) =4438.7 oz/gal(UK) = 3696 oz/gal(US liq) = 20.8286 ton(long)/yd3 = 23.3280 ton(short)/yd3
  • 1 oz/gal(UK) =  0.8327 oz/gal(US liq) = 6.2360 kg/m3 = 6.2288 oz/ft3 = 0.3893 lb/ft3 = 10.5112 lb/yd3
  • 1 oz/gal(US liq) = 1.2009 oz/gal(UK) = 7.4892 kg/m3 = 7.4805 oz/ft3 = 0.4675 lb/ft3 = 12.6234 lb/yd3
  • 1 sl/ft3 = 515.3788 kg/m3 = 514.7848 oz/ft3 = 0.2979 oz/in3 = 32.1741 lb/ft3 = 82.645 oz/gal(UK) = 68.817 oz/gal(US liq) 
  • 1 ton(long)/yd3 = 1.12 ton(short)/yd3 = 1328.94 kg/m3 = 0.7682 oz/in3 = 82.963 lb/ft3 = 2240 lb/yd3 = 2.5786 sl/ft3 = 13.319 lb/gal(UK) = 11.0905 lb/gal(US liq)
  • 1 ton(short)/yd3 = 0.8929 ton(long)/yd3 = 1186.55 kg/m3 = 0.6859 oz/in3 = 74.074 lb/ft3 = 2000 lb/yd3 = 2.3023 sl/ft3 = 11.8921 lb/gal(UK) = 9.9023 lb/gal(US liq)


Pentane Phase Digaram

HR director is interviewing, Dongying Liangxin Petrochemical Technology Development Limited Company

Graduate Students from OUC Come to Our Company for Exchange

Graduate students from Ocean University of China come to our company for exchange and visit

On the morning of July 22, a group of 5 graduate students majoring in Applied Chemistry from Ocean University of China came to our company for exchange and visit. Sun peisheng, the assistant general manager of the company, Wei fuchang, the director of the production and operation center, and chen huimin, the manager of the general office, attended the exchange.

Chen Huimin extended a warm welcome to the exchange students of Ocean University of China and introduced the company in detail. The graduate students listened carefully to the introduction and watched the company’s promotional videos. Wei fuchang led the exchange students to visit the factory and gave relevant explanations. Sun Peisheng had in-depth exchanges with students in the company’s products, research directions, cooperation fields and other aspects. This activity created opportunities for communication and learning between the company and the school, and laid a good foundation for the next step of school and enterprise cooperation.

Dongying Liangxin Petrochemical Technology Development Limited Company

The director of human resources department is talking with the presidents of major universities, Dongying Liangxin Petrochemical Technology Development Limited Company

DVCST Visited Our Company for Exchange and Investigation

Dongying Vocational College of Science and Technology visited our Company for Exchange and Investigation

On the morning of July 13, Miao Jin, Dean of the school of Economics and Management of Dongying Vocational College of Science and Technology, and his delegation came to our company for exchange and investigation. Chen Huimin, Manager of the General Office of the company, participated in this exchange activity. Chen Huimin extended a warm welcome to the leaders of the college, and the two sides had an in-depth exchange and Discussion on how to deepen school and enterprise cooperation. Miao Jin expressed the hope to reach long-term practical training friendly cooperation with the company.

Through this exchange activity, the communication and understanding between the company and the school have been strengthened, the friendly relationship between the two sides has been enhanced, and the foundation has been laid for further cooperation.

Dongying Liangxin Petrochemical Technology Development Limited Company, a subsidiary of Junyuan Petroleum Group, has been engaged in the export of butane, pentane, hexane and heptane since 2006. More than 15 years of experience enables you to rest without worrying about goods transportation.

Major customers include PetroChina, Sinopec, Shell, BASF, Saudi Basic Industries Corporation, China Coal, geothermal power plants and other foaming plants.
SGS, CIQ, BV, Rosh, ISO certificates are available.
Production Capacity: 1000,000 tons / year
After Sales Service: Dongying Liangxin Petrochemical Technology Development Limited Company enjoys a good reputation in the alkane industry. You can trust us completely.
Quality Assurance
As a quality-oriented company, we spare no effort to provide customers with the best range of products. In addition, we have hired a team of quality analysts to ensure that our industrial chemicals series meet international standards. Our quality analyst team maintains strict monitoring of the handling of chemicals and ensures that the range of various parameters is checked before sending chemicals to the client. The various parameters of our csindustrial chemical series tests are as follows:
Pure
PH value
Precise composition
For more information: info@junyuanpetroleumgroup.com

Price change of Isopentane in recent year

Isopentane Market: Overview
Isopentane, also known as 2-Methyl Butane, name in Chinese 异戊烷, is a clear liquid that is highly flammable at room temperature. It is utilized as a foam blowing agent in the production of polystyrene, PU foams, etc. Various industrial grade isopentane are available in the market for specific applications. For instance, Isopentane, 40% is used for cleaning process in electronics, as it is highly volatile as well as has low content of impurities such as benzene, sulfur, total aromatics, and olefins.
Rise in Demand for Isopentane Foam Blowing Agent to Drive Market
The usage of Isopentane as foam blowing agent in expandable polystyrene foams is a major factor driving the global isopentane market. Blended form of isopentane is employed for this application, as it provides superior stability as well as ease in processing of foam. Expandable polystyrene (EPS) is used in a wide range of applications in end-use industries. This is projected to drive the isopentane market. EPS has applications in packaging, construction, and specialty foam manufacturing areas; of this, construction and packaging segments account for major share of the global market. Ban of CFCs and phase out plan for HCFCs has also increased the adoption of isopentane among end-users. Currently, most countries across the globe have initiated phase 2 of the phase out management plan for the HCFC, wherein countries have to decrease their dependence on HCFCs that are used in foam manufacturing and refrigeration systems in order to lower greenhouse gas (GHG) emissions. Under phase 2 management plan, countries are projected to stop manufacturing HCFCs and minimize internal consumption of HCFCs. Governments across the globe have already started promoting alternative non-HCFC foam blowing agents. They have also initiated the enactment of regulatory framework for setting up of standard codes for use of these non-HCFCs in foam manufacturing.
Growth of the isopentane market is expected to remain below par owing to the availability of alternative compounds. High risk involved in handling of isopentane is also likely to negatively affect the market in the near future. However, the global isopentane market is estimated to expand in line with the global GDP rate with increasing adoption of isopentane in end-use industries, particularly among expandable polystyrene (EPS) manufacturers.
Pure Form Segment to Offer Lucrative Opportunities
Based on form, the global isopentane market can be segmented into pure form (99%), isopentane 95%, and blended isopentane
The pure form segment is expected to dominate the global isopentane market during the forecast period. It is the fastest-growing form segment of the global isopentane market. Isopentane is primarily employed as a foam blowing agent in packaging and construction industries.
EPS Blowing Agent Application Segment to Hold Major Share of Market
Based on application, the global isopentane market can be divided into EPS blowing agent, electronic cleaning, chemical solvent, aerosol propellant, and others
The EPS blowing agent segment is anticipated to dominate the global isopentane market during the forecast period. It is the second-fastest growing application segment of the global isopentane market.
Isopentane (purity >99, water < 20ppm, sulfur < 1ppm, acid value < 2ppm) by Dongying Liangxin Petrochemical Technology Development Limited Company has a stable price, with a quotation of 11,700 yuan / ton, EXW Dongying Cina, which is mainly used in polyethylene units and LNG field. The following is the price change of isopentane since July 13, 2021.

Date Product Specifiction Country Manufacturer Price Change
2022/07/12 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 1.74%
2022/07/11 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/07/08 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/07/07 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/07/06 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/07/05 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/07/04 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/07/01 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/30 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/29 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/28 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/27 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/24 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/23 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/22 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/21 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/20 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/17 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/16 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/15 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/14 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/13 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/10 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 1.77%
2022/06/09 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/08 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/07 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/06 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/02 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/06/01 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company -2.16%
2022/05/31 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/30 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/27 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/26 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/25 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/24 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/23 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/20 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/19 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/18 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/17 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/16 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/13 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/12 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/11 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/10 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/09 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/07 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/06 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/05/05 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/29 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/28 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/27 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/26 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/25 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/24 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/22 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/21 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/20 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/19 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/18 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/15 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/14 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company -0.86%
2022/04/13 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/12 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/11 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/08 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/07 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/06 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/02 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/04/01 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/31 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company -1.69%
2022/03/30 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/29 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/28 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company -0.84%
2022/03/25 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/24 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/23 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/22 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/21 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/18 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/17 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/16 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/15 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/14 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company -0.42%
2022/03/11 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 11.11%
2022/03/10 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/09 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/08 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/07 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 4.85%
2022/03/04 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/03 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/02 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/03/01 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/28 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/25 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/24 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 3.00%
2022/02/23 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/22 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/21 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/18 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/17 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/16 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/15 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/14 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/11 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/10 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/09 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/08 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/02/07 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company
2022/01/30 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/29 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/28 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/27 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/26 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/25 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/24 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/21 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/20 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/19 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/18 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/17 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/14 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/13 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/12 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/11 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/10 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 1.18%
2022/01/07 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 1.19%
2022/01/06 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/05 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2022/01/04 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/31 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/30 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/29 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/28 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/27 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/24 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/23 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/22 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/21 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/20 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/17 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/16 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/15 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/14 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/13 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/10 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/09 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/08 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/07 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/06 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/03 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/02 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/12/01 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/30 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/29 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/26 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/25 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/24 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/23 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/22 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/19 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/18 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/17 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/16 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/15 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/12 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/11 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/10 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/09 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/08 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/05 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/04 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/03 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/11/02 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company -1.18%
2021/11/01 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/29 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/28 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/27 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/26 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/25 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/22 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/21 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/20 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/19 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/18 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/15 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/14 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/13 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/12 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/11 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 3.66%
2021/10/09 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/10/08 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company
2021/09/30 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/29 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/28 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/27 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/26 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/24 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/23 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/22 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/18 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/17 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/16 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/15 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/14 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/13 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/10 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/09 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/08 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/07 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/06 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/03 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/02 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/09/01 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/31 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/30 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/27 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/26 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/25 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/24 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/23 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/20 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/19 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/18 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/17 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/16 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/13 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/12 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/11 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/10 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/09 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/06 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/05 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/04 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/03 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/08/02 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/07/30 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/07/29 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/07/28 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/07/27 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/07/26 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/07/23 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/07/22 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/07/21 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/07/20 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/07/19 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/07/16 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/07/15 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 2.50%
2021/07/14 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%
2021/07/13 Isopentane 99% China Dongying Liangxin Petrochemical Technology Development Limited Company 0.00%

Polyolefin foams made with isopentane-based blowing agents

Polyolefin foams made with isopentane-based blowing agents
A blowing agent blend for making polyolefin foams comprising isopentane and at least one co-blowing agent The co-blowing agent is either a physical co-blowing agent having a boiling point less than 28° C., or a chemical co-blowing agent, or combinations thereof The blowing agent blend comprises less than about 99 mol % isopentane.

Inventors:
Handa, Paul Y. (Pittsford, NY, US)
Gu, Jiayan (Farmington, NY, US)
Application Number:
10/188263
Publication Date:
01/08/2004
Filing Date:
07/02/2002
Assignee:
HANDA Y. PAUL
GU JIAYAN
Other Classes:

516/12
International Classes:
C08J9/12; C08J9/14; (IPC1-7): C08J9/00


Primary Examiner:

FOELAK, MORTON
Attorney, Agent or Firm:
NIXON PEABODY LLP (CHICAGO, IL, US)
Claims:

What is claimed is:



1. A blowing agent blend for making polyolefin foams comprising isopentane and at least one co-blowing agent, the co-blowing agent being either a physical co-blowing agent having a boiling point less than 28° C., or a chemical co-blowing agent, or combinations thereof, and wherein the blowing agent blend comprises less than about 99 mol % isopentane.

2. The blowing agent blend of claim 1, wherein the polyolefin foam is dimensionally stable.

3. The blowing agent blend of claim 1, wherein the co-blowing agent includes at least one physical co-blowing agent, the at least one physical co-blowing agent being ethane, n-propane, n-butane, isobutane, cyclopropane, nitrogen, argon, carbon dioxide, sulfur hexafluoride, nitrous oxide, dimethyl ether, 1,1-difluoroethane (HFC-152a), 1,1,1-trifluoroethane (HFC-143a), 1,1,1,2-tetrafluoroethane (HFC-134a), 1,1,2,2-tetrafluoroethane (HFC-134), 1,1,1,3,3-pentafluoropropane (HFC-245fa) or combinations thereof.

4. The blowing agent blend of claim 1, wherein the blowing agent blend includes a chemical co-blowing agent.

5. The blowing agent blend of claim 1, wherein the blowing agent blend comprises from about 10 mol % to about 60 mol % isopentane.

6. The blowing agent blend of claim 5, wherein the blowing agent blend comprises from about 15 mol % to about 40 mol % isopentane.

7. The blowing agent blend of claim 6, wherein the blowing agent blend comprises from about 25 mol % to about 40 mol % isopentane.

8. The blowing agent blend of claim 1, wherein the polyolefin foam comprises polyethylene.

9. The blowing agent blend of claim 1, wherein the polyolefin foam has a density of less than 3 lb/ft3.

10. A polyolefin foam structure prepared by the process comprising: melting a thermoplastic polyolefin polymer, dissolving an effective amount of a blowing agent blend in the polyolefin polymer, the blowing agent blend comprising less than about 99 mol % isopentane and at least one co-blowing agent, the co-blowing agent being either a physical co-blowing agent having a boiling point less than 28° C., or a chemical co-blowing agent, or combinations thereof, forming an extrudate, transferring the extrudate to an expansion zone, and permitting the extrudate to expand in the expansion zone to produce the polyolefin foam structure, the polyolefin foam structure being a substantially closed-cell and dimensionally-stable structure.

11. The polyolefin foam structure of claim 10, wherein the extrudate comprises from about 1 to about 18 wt % blowing agent.

12. The polyolefin foam structure of claim 10, wherein the polyolefin foam structure has at least 20 cells per inch.

13. The polyolefin foam structure of claim 12, wherein the polyolefin foam structure has at least 25 cells per inch.

14. The polyolefin foam structure of claim 13, wherein the polyolefin foam structure has at least 30 cells per inch.

15. The polyolefin foam structure of claim 10, wherein the polyolefin foam structure is a sheet.

16. The polyolefin foam structure of claim 10, wherein the polyolefin foam structure is a plank.

17. The polyolefin foam structure of claim 10 further including mixing a nucleating agent and the thermoplastic polyolefin polymer to form a mixture, and dissolving an effective amount of the blowing agent blend into the mixture.

18. The polyolefin foam structure of claim 10 further including: melting a stability control agent, mixing the stability control agent and the thermoplastic polyolefin polymer to form a mixture, and dissolving an effective amount of the blowing agent blend into the mixture.

19. The polyolefin foam structure of claim 10, wherein the polyolefin foam structure comprises polyethylene.

20. The polyolefin foam structure of claim 19, wherein the polyolefin foam structure comprises low density polyethylene.

21. The polyolefin foam structure of claim 10, wherein the polyolefin foam structure has a density of less than 3 lb/ft3.

22. A process for making a polyolefin foam structure comprising: melting a thermoplastic polyolefin polymer, dissolving an effective amount of a blowing agent blend in the polyolefin polymer, the blowing agent blend comprising less than about 99 mol % isopentane and at least one co-blowing agent, the co-blowing agent being either a physical co-blowing agent having a boiling point less than 28° C., or a chemical co-blowing agent, or combinations thereof, forming an extrudate, transferring the extrudate to an expansion zone, and permitting the extrudate to expand in the expansion zone to produce the polyolefin foam structure.

23. The process of claim 22, wherein the polyolefin structure is a substantially closed-cell and dimensionally stable structure.

24. The process of claim 22, wherein the extrudate comprises from about 1 to about 18 wt % blowing agent.

25. The process of claim 22 further including mixing a nucleating agent and the thermoplastic polyolefin polymer to form a mixture, and dissolving an effective amount of the blowing agent blend into the mixture.

26. The process of claim 22 further including: melting a stability control agent, mixing the stability control agent and the thermoplastic polyolefin polymer to form a mixture, and dissolving an effective amount of the blowing agent blend into the mixture.

27. The process of claim 22, wherein the co-blowing agent includes at least one physical co-blowing agent, the at least one physical co-blowing agent being ethane, n-propane, n-butane, isobutane, cyclopropane, nitrogen, argon, carbon dioxide, sulfur hexafluoride, nitrous oxide, dimethyl ether, 1,1-difluoroethane (HFC-152a), 1,1,1-trifluoroethane (HFC-143a), 1,1,1,2-tetrafluoroethane (HFC-134a), 1,1,2,2-tetrafluoroethane (HFC-134), 1,1,1,3,3-pentafluoropropane (HFC-245fa) or combinations thereof.

28. The process of claim 22, wherein the blowing agent blend includes a chemical co-blowing agent.

29. The process of claim 22, wherein the blowing agent blend comprises from about 10 mol % to about 60 mol % isopentane.

30. The process of claim 29, wherein the blowing agent blend comprises from about 15 mol % to about 40 mol % isopentane.

31. The process of claim 30, wherein the blowing agent blend comprises from about 25 mol % to about 40 mol % isopentane.

32. The process of claim 22, wherein the polyolefin foam structure comprises polyethylene.

33. The process of claim 32, wherein the polyolefin foam structure comprises low density polyethylene.

34. The process of claim 22, wherein the polyolefin foam structure has a density of less than 3 lb/ft3.

35. A blowing agent blend for foaming low density polyethylene foam consisting essentially of isopentane and at least one co-blowing agent, the co-blowing agent being either a physical co-blowing agent having a boiling point less than 28° C., or a chemical co-blowing agent, or combinations thereof, and wherein the blowing agent blend includes from about 10 to about 99 mol % isopentane and the remainder consists essentially of the co-blowing agent.

36. The blowing agent blend of claim 35, wherein the co-blowing agent includes at least one physical co-blowing agent, the at least one physical co-blowing agent being ethane, n-propane, n-butane, isobutane, cyclopropane, nitrogen, argon, carbon dioxide, sulfur hexafluoride, nitrous oxide, dimethyl ether, 1,1-difluoroethane (HFC-152a), 1,1,1-trifluoroethane (HFC-143a), 1,1,1,2-tetrafluoroethane (HFC-134a), 1,1,2,2-tetrafluoroethane (HFC-134), 1,1,1,3,3-pentafluoropropane (HFC-245fa) or combinations thereof.

37. The blowing agent blend of claim 35, wherein the blowing agent blend comprises from about 10 mol % to about 60 mol % isopentane.

38. The blowing agent blend of claim 37, wherein the blowing agent blend comprises from about 25 mol % to about 40 mol % isopentane.

39. A process for making a low density polyethylene foam structure prepared by the process comprising: melting a low density polyethylene polymer; dissolving an effective amount of a blowing agent blend in the low density polyethylene polymer, the blowing agent blend comprising from about 10 to about 99 mol % isopentane and at least one co-blowing agent, the co-blowing agent being either a physical co-blowing agent having a boiling point less than 28° C., or a chemical co-blowing agent, or combinations thereof, forming an extrudate, transferring the extrudate to an expansion zone, and permitting the extrudate to expand in the expansion zone to produce the low density polyethylene structure.

40. The process of claim 39 further including: melting a stability control agent, mixing a nucleating agent, the stability control agent and the thermoplastic polyolefin polymer to form a mixture, and dissolving an effective amount of the blowing agent blend into the mixture.

41. The process of claim 40, wherein the nucleating agent is talc, and the stability control agent is glycerol monostearate.

42. The process of claim 39, wherein the co-blowing agent includes at least one physical co-blowing agent, the at least one physical co-blowing agent being ethane, n-propane, n-butane, isobutane, cyclopropane, nitrogen, argon, carbon dioxide, sulfur hexafluoride, nitrous oxide, dimethyl ether, 1,1-difluoroethane (HFC-152a), 1,1,1-trifluoroethane (HFC-143a), 1,1,1,2-tetrafluoroethane (HFC-134a), 1,1,2,2-tetrafluoroethane (HFC-134), 1,1,1,3,3-pentafluoropropane (HFC-245fa) or combinations thereof.

43. The process of claim 39, wherein the blowing agent blend includes a chemical co-blowing agent.

44. The process of claim 39, wherein the blowing agent blend comprises from about 10 mol % to about 60 mol % isopentane.

45. The process of claim 44, wherein the blowing agent blend comprises from about 25 mol % to about 40 mol % isopentane.

46. The process of claim 39, wherein the low density polyethylene foam has a density of less than 3 lb/ft3.

Description:

FIELD OF INVENTION

[0001] The present invention relates generally to foams using blowing agent blends or mixtures, and processes of making the same More particularly, the present invention relates to polyolefin foams using isopentane-based blowing agent blends that produce a stable foam with minimized or no corrugation, and processes of making the same.

BACKGROUND OF THE INVENTION

[0002] Polyolefin foam, such as low density polyethylene foam, is commonly made by combining a physical blowing agent with molten polyethylene resin under pressure and, after thorough mixing, extruding the combination through an appropriate die into a lower pressure atmosphere.

[0003] In the past, physical blowing agents widely used for making polyolefin foams were chlorofluorocarbons and hydrochlorofluorocarbons. Use of such blowing agents, however, has been or will be banned because of environmental concerns.

[0004] Presently, physical blowing agents more commonly used for making low density polyethylene (LDPE) foams are hydrocarbons such as isobutane or blends of isobutane and n-butane. Other hydrocarbons such as ethane and propane have been used more recently in making LDPE foams. The ability of isobutane, n-butane, propane, ethane and combinations thereof to give stable, low density foams depends on factors such as desirable solubility in low density polyethylene, and the ability of gas permeation modifiers to slow down the escape of such blowing agents. The resultant foam article (e.g., a sheet) using such blowing agents is frequently produced with at least some corrugation. Corrugation occurs when the radial rate of expansion is higher than the radial space available for the foam as it exits the die. Corrugation may be reduced to a certain extent by optimizing the foaming process and apparatus used in forming the foam with these blowing agents, but a low degree of corrugation or visible corrugation lanes often remain. The corrugation becomes more pronounced when a fluid with a very low boiling point (e.g., ethane or propane) is (a) used as the sole blowing agent or (b) present in an amount greater than about 5 mol % with a higher boiling fluid (e.g, isobutane). Corrugation also tends to occur more frequently in sheets (thickness of up to about ½ inch) as opposed to planks (thickness of greater than about an inch), and the degree and magnitude of corrugation increase as the foam density decreases.

[0005] Therefore, a need exists for a stable foam having minimized or no corrugation, and a process for making the same.

SUMMARY OF THE INVENTION

[0006] According to one embodiment of the present invention, a blowing agent blend for making polyolefin foams comprises isopentane and at least one co-blowing agent. The co-blowing agent is either a physical co-blowing agent having a boiling point less than 28° C., or a chemical co-blowing agent, or combinations thereof. The blowing agent blend comprises less than about 99 mol % isopentane. The polyolefin foam may be a low density polyethylene foam. The blowing agent blend may consist essentially of isopentane and the co-blowing agent in which the blowing agent blend includes about 10 to about 99 mol % isopentane with the remainder consisting essentially of the co-blowing agent.

[0007] According to another embodiment, a polyolefin foam structure is prepared by the process comprising melting a thermoplastic polyolefin polymer. An effective amount of a blowing agent blend is dissolved in the polyolefin polymer melt. The blowing agent blend comprises less than about 99 mol % isopentane and at least one co-blowing agent. The co-blowing agent is either a physical co-blowing agent having a boiling point less than about 28° C., or a chemical co-blowing agent, or combinations thereof. An extrudate is formed and transferred to an expansion zone. The extrudate is permitted to expand in the expansion zone to produce the polyolefin foam structure that is a substantially closed-cell and dimensionally-stable structure.

[0008] According to a process of the present invention, a polyolefin foam structure is produced that comprises melting a thermoplastic polyolefin polymer. An effective amount of a blowing agent blend is dissolved in the polyolefin polymer melt. The blowing agent blend comprises less than about 99 mol % isopentane and at least one co-blowing agent. The co-blowing agent is either a physical co-blowing agent having a boiling point less than about 28° C., or a chemical co-blowing agent, or combinations thereof. An extrudate is formed and is transferred to an expansion zone. The extrudate is permitted to expand in the expansion zone to produce the polyolefin foam structure. The polyolefin foam structure may comprise a low density polyethylene.

BRIEF DESCRIPTION OF THE DRAWINGS

[0009] FIGURE is a schematic flow diagram of an overall sequence of operations involved in the manufacture of a foamed polyolefin sheet with the blowing agent blends according to one embodiment of the present invention.

[0010] While the invention is susceptible to various modifications and alternative forms, specific embodiments thereof have been shown by way of example in the drawing and will herein be described in detail. It should be understood, however, that it is not intended to limit the invention to the particular forms disclosed but, on the contrary, the intention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the invention as defined by the appended claims.

DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS

[0011] Resins that can be foamed in accordance with the present invention include polyolefin resins such as ethylenic polymers and propylenic polymers. Suitable ethylenic polymer materials include ethylenic homopolymers, and copolymers of ethylenic compounds and copolymerizable ethylenically unsaturated comonomers. The ethylenic polymer material may further include minor proportions of non-ethylenic polymers. The ethylenic polymer material may be comprised solely of one or more ethylenic homopolymers, one or more ethylenic copolymers, a blend of one or more of each of ethylenic homopolymers and copolymers, or blends of any of the foregoing with a non-ethylenic polymer. Regardless of composition, the ethylenic polymer material comprises greater than 50 and preferably greater than 70 wt % of ethylenic monomeric units. Most preferably, the ethylenic polymer material is comprised completely of ethylenic monomeric units. Most preferred ethylenic polymers are polyethylene homopolymers. Polyethylenes may be of the high, medium, low, linear low, or ultra-low density type. Most preferred are low density polyethylenes. The polyethylenes may be linear, branched or cross-linked.

[0012] Suitable ethylenic copolymers may be comprised of ethylenic monomeric units and minor amounts, preferably 20 wt % or less, of a monoethylenically unsaturated monomeric unit or units copolymerizable therewith. Suitable comonomers include C1-4 alkyl acids and esters, ionomeric derivatives, C2-6 dienes and C3-9 olefins. Examples of suitable comonomers include acrylic acid, itaconic acid, maleic acid, methacrylic acid, ethacrylic acid, methyl acrylate, methyl methacrylate, ethyl acrylate, vinyl acetate, carbon monoxide, maleic anhydride, acrylonitrile, propylene, isobutylene, and butadiene.

[0013] Polypropylene that may be used in the present invention includes polypropylene homopolymer or copolymers. Various polypropylenes that may be suitable in the present invention include, but are not limited to, atactic, isotactic, syndiotactic, long-chain branched, and propylene/ethylene copolymers.

[0014] The foam processes of the present invention employ a blowing agent blend or mixture to achieve a stable polyolefin foam with minimized or no corrugation. The blowing agent blend used in forming polyolefin foam is isopentane-based. The blowing agents blend comprises at least isopentane and at least one co-blowing agent. The co-blowing agent(s) can be physical, chemical or combinations thereof. The blowing agent blend comprises less than about 99 mol % isopentane.

[0015] A physical co-blowing agent is defined herein as having a boiling point less than 28° C. The co-blowing agent is fast expanding as compared to a pure isopentane blowing agent. The physical blowing agent may be inorganic or organic. Some suitable inorganic blowing agents include, but are not limited to, air, nitrogen, argon, xenon, carbon dioxide, sulfur hexafluoride, nitrous oxide, ammonia, silicon tetrafluoride, nitrogen trifluoride, boron trifluoride, and boron trichloride. Some examples of organic co-blowing agents that may be used in the present invention include, but are not limited to, hydrocarbons, halogenated hydrocarbons, fluids with polar groups, and combinations thereof. Hydrocarbons include, but are not limited to, methane, ethane, propane, cyclopropane, n-butane, isobutane, cyclobutane, and neopentane. Halogenated hydrocarbons include, but are not limited to, methyl fluoride, difluoromethane (HFC-32), trifluoromethane (HFC-23), perfluoromethane, chlorodifluoromethane (HCFC-22), methylene chloride, ethyl chloride, ethyl fluoride, 1,1-difluoroethane (HFC-152a), 1,1,1-trifluoroethane (HFC-143a), 1,1,1,2-tetrafluoroethane (HFC- 134a), 1,1,2,2-tetrafluoroethane (HFC-134), pentafluoroethane (HFC-125), perfluoroethane, 1,1-dichloro-1-fluoroethane (HCFC-141b), 1-chloro-1,1-difluoroethane (HCFC-142b), 1,1 -dichloro-2,2,2-trifluoroethane (HCFC-123), and 1-chloro-1,2,2,2-tetrafluoroethane (HCFC-124), difluoropropane, 1,1,1-trifluoropropane, 1,1,1,3,3-pentafluoropropane (HFC-245fa), perfluoropropane, perfluorobutane, perfluorocyclobutane, and vinyl fluoride. Fluids with polar groups include, but are not limited to, dimethyl ether, vinyl methyl ether, methyl ethyl ether, dimethyl fluoroether, diethyl fluoroether, perfluorotetrahydrofuran, dimethylamine, trimethylamine, ethylamine, and perfluoroacetone.

[0016] Chemical co-blowing agents that may be used include azodicarbonamide, azodilsobutyro-nitrile, benzenesulfonhydrazide, 4,4-oxybenzene sulfonyl-semicarbazide, p-toluene sulfonyl semicarbazide, barium azodicarboxylate, N,N′-dimethyl-N,N′-dinitrosoterephthalamide, trihydrazino triazine, and other azo, N-nitroso, carbonate, and sulfonyl hydrazides. There are also various acid/bicarbonate mixtures that decompose into gases when heated For example, mixtures of citric acid and sodium bicarbonate sold under the name HYDROCEROL® can be employed as chemical co-blowing agents.

[0017] The total amount of the blowing agent blend used depends on conditions such as extrusion-process conditions at mixing, the blowing agent blend being used, the composition of the extrudate, and the desired density of the foamed article. The extrudate is defined herein as including the blowing agent blend, a polyolefin resin(s), and any additives. For a foam having a density of from about 1 to about 15 lb/ft3, the extrudate typically comprises from about 18 to about 1 wt % of blowing agent.

[0018] The blowing agent blend used in the present invention comprises less than about 99 mol % isopentane. The blowing agent blend generally comprises from about 10 mol % to about 60 or 75 mol % isopentane. The blowing agent blend more typically comprises from about 15 mol % to about 40 mol % isopentane. More specifically, the blowing agent blend comprises from about 25 or 30 mol % to about 40 mol % isopentane. The blowing agent blend generally comprises at least about 15 or 30 mol % of co-blowing agent(s). More specifically, the blowing agent blend comprises from about 40 to about 85 or 90 mol % of co-blowing agent(s). The blowing agent blend more typically comprises from about 60 mol % to about 70 or 75 mol % of co-blowing agent(s).

[0019] A nucleating agent or combination of such agents may be employed in the present invention for advantages, such as its capability for regulating cell formation and morphology. A nucleating agent, or cell size control agent, may be any conventional or useful nucleating agent(s). The amount of nucleating agent used depends upon the desired cell size, the selected blowing agent blend, and the desired foam density. The nucleating agent is generally added in amounts from about 0.02 to about 20 wt % of the polyolefin resin composition.

[0020] Some contemplated nucleating agents include inorganic materials (in small particulate form), such as clay, talc, silica, and diatomaceous earth. Other contemplated nucleating agents include organic nucleating agents that decompose or react at the heating temperature within an extruder to evolve gases, such as carbon dioxide and/or nitrogen. One example of an organic nucleating agent is a combination of an alkali metal salt of a polycarboxylic acid with a carbonate or bicarbonate. Some examples of alkali metal salts of a polycarboxylic acid include, but are not limited to, the monosodium salt of 2,3-dihydroxy-butanedioic acid (commonly referred to as sodium hydrogen tartrate), the monopotassium salt of butanedioic acid (commonly referred to as potassium hydrogen succinate), the trisodium and tripotassium salts of 2-hydroxy-1,2,3-propanetricarboxylic acid (commonly referred to as sodium and potassium citrate, respectively), and the disodium salt of ethanedioic acid (commonly referred to as sodium oxalate), or polycarboxylic acid such as 2-hydroxy-1,2,3-propanetricarboxylic acid. Some examples of a carbonate or a bicarbonate include, but are not limited to, sodium carbonate, sodium bicarbonate, potassium carbonate, potassium bicarbonate, and calcium carbonate.

[0021] It is contemplated that mixtures of different nucleating agents may be added in the present invention. Some more desirable nucleating agents include talc, crystalline silica, and a stoichiometric mixture of citric acid and sodium bicarbonate (the stoichiometric mixture having a 1 to 100 percent concentration where the carrier is a suitable polymer such as polyethylene). Talc may be added in a carrier or in a powder form.

[0022] Gas permeation agents or stability control agents may be employed in the present invention to assist in preventing or inhibiting collapsing of the foam. The stability control agents suitable for use in the present invention may include the partial esters of long-chain fatty acids with polyols described in U.S. Pat. No. 3,644,230, saturated higher alkyl amines, saturated higher fatty acid amides, complete esters of higher fatty acids such as those described in U.S. Pat. No. 4,214,054, and combinations thereof described in U.S. Pat. No. 5,750,584.

[0023] The partial esters of fatty acids that may be desired as a stability control agent include the members of the generic class known as surface active agents or surfactants. A preferred class of surfactants includes a partial ester of a fatty acid having 12 to 18 carbon atoms and a polyol having three to six hydroxyl groups. More preferably, the partial esters of a long chain fatty acid with a polyol component of the stability control agent is glycerol monostearate, glycerol distearate or mixtures thereof. It is contemplated that other gas permeation agents or stability control agents may be employed in the present invention to assist in preventing or inhibiting collapsing of the foam.

[0024] If desired, fillers, colorants, light and heat stabilizers, anti-oxidants, acid scavengers, flame retardants, processing aids, extrusion aids and foaming additives may be used in making the foam.

[0025] A conventional two-extruder tandem system with each extruder having a single screw may be used for extruding the foam article of the present invention. Alternatively, a two-extruder tandem system in which the primary extruder is a twin screw, and the secondary extruder is a single screw may be used for extruding the foam article of the present invention. A single extruder with proper cooling may also be employed in the present invention.

[0026] According to one process of the present invention, polyolefin resin pellets (e.g., a low density polyethylene) are admixed with a nucleating agent, such as talc, and a stability control agent, such as glycerol monostearate. These materials are continuously fed into a hopper of an extruder. The feed mixture is conveyed forward by a screw within a barrel of the extruder as the mixture is mixed, compressed, heated, and converted to molten form. The conversion to molten form occurs prior to reaching an injection zone where the blowing agent is added. The blowing agent blend of the present invention may be injected into the polyolefinic composition at a point where the polymer is in a melt state (i.e., beyond the feed zone).

[0027] After injecting the blowing agent blend, the mixture is continuously mixed at pressures to ensure a homogeneous solution of the resin and the blowing agent blend. The molten mixture is then conveyed into a cooling zone where additional mixing takes place. After cooling, the mixture may be extruded into a holding zone maintained at a temperature and pressure that prevents or inhibits foaming of the mixture. The holding zone has (a) an outlet die having an orifice opening into a zone of lower pressure such as atmospheric pressure at which the mixture foams, (b) means for closing the orifice without disturbing the foamable mixture within the holding zone, and (c) opening means for allowing the foamable mixture to be ejected from the holding zone. An example of a holding zone is described in U.S. Pat. No. 4,323,528. Regardless of whether a holding zone is used, the mixture is then extruded through a die into a lower pressure zone, such as atmospheric pressure.

[0028] According to one embodiment, a two-extruder tandem system 10 of the FIGURE may be used for extruding a polyolefin foam article (e.g., a sheet) of the present invention. Polyolefin resin pellets such as polyethylene are mixed with at least one additive (e.g., a nucleating agent and/or stability control agent) to form a feed mixture which is fed continuously into a hopper 11 of a primary extruder 13. The feed mixture is conveyed forward by a helical screw within a barrel of the extruder as the feed mixture is mixed, compressed, heated and melted prior to reaching the blowing agent-injection zone. The blowing agent blend (at least isopentane and one co-blowing agent) is added at point 15. Thus, the blowing agent blend of the present invention is injected into the polyethylene/additives mixture (feed mixture) at a point beyond the feed zone where the polyethylene is melted It is contemplated that the blowing agent blend may be injected at other locations, including into a secondary extruder.

[0029] Following injection of the blowing agent blend, the mixture is continuously mixed in the primary extruder 13. The exit pressure of the primary extruder 13 is generally in the range of from about 1200 to about 2500 psi. The temperature of the primary extruder 13 is generally in the range of from about 300 to about 400° F. The mixture is subsequently passed, at a high enough pressure that the blowing agent blend remains in solution, through a hollow adapter section 17 into a cooled secondary tandem extruder 19. The molten mixture is passed along the length of the cooled secondary extruder at low shear where cooling and additional mixing occur. The exit pressure of the secondary extruder 19 is generally in the range of from about 400 to about 1200 psi. The temperature of the extrudate from the secondary extruder 19 is generally in the range of from about 205 to about 220° F. In general, the temperature of the primary extruder should be sufficient to melt the polymer and any additives, and to promote efficient mixing. The temperature and pressure in the secondary extruder should be sufficient to keep the polymer and the blowing agent blend as a homogeneous solution. The mixture is then expressed through an annular die 21, though a die of a different configuration, such as a flat die, may also be used. The foamable polyethylene polymer is extruded through the annular die 21 in the form of an elongated bubble or tube 23. The foamable polyethylene polymer in the FIGURE is expanded and drawn over a cylindrical surface of a cooling and sizing drum 25, and slit to form sheet stock 27. The sheet stock 27 is taken up on one or more winding reels 29.

[0030] If the article produced is a sheet, the thickness of the sheet can be up to about 0.5 inch. If the article produced is a plank, the thickness is generally greater than about one inch. The articles produced from the extruded tube are generally from about 0.020 to about 0.25 inch in thickness.

[0031] The resulting foamed article generally has a density from about 1 to about 15 lb/ft3, more typically from about 2.0 to about 9.0 lb/ft3. When in sheet form, the foamed article is preferably “low density” which is defined herein as being less than 3 lb/ft3. The resultant foamed article has a substantially closed-cell structure and is defined herein as a foam having greater than about 85% closed cells and, more typically, greater than about 95% closed cells.

[0032] The polyolefin foams are light in weight and may be used as protective or flexible packaging for delicate goods such as computers, glassware, televisions, furniture, and any article that needs to be protected from gouging, surface-scratching or marring. It is contemplated that the polyolefin foams of the present invention may be used in other applications such as floor underlayments, flotation foam (e.g., life jackets), toys and recreational parts. Generally speaking, foam sheets are used in flexible packaging, while foam planks are used in protective packaging. In addition to foam sheets and planks, the present invention may take the form of other shapes such as rods.

[0033] The resulting polyolefin foam of the present invention is preferably “dimensionally stable.” Dimensional stability as defined herein is when the density of the foam does not deviate more than about 15% (i.e., the foam does not either shrink more than about 15% or expand more than about 15%) from the density of the polyolefin foam at the time of production. The density of the polyolefin foam at the time of production refers to its density within about 15 minutes, and preferably within 10 minutes, after the foam exits the die. This measurement is used in determining the “fresh” density-of the foam. To have a dimensionally stable product, the foam is typically measured after an aging process (e.g., for LDPEs from about 5 to about 30 days) and compared to its fresh density. It is recognized, however, that in the unlikely event that the foam at a later duration is not within about 15% of its fresh density, then it is not a dimensionally stable product. It is preferable that the foam does not deviate more than about 10% from its “fresh” density.

[0034] It is desirable for some polyolefin foams of the present invention to have a certain number of cells per inch. For example, it is desirable to have at least 20 or 25 cells per inch, and more preferably 30 cells per inch in both the machine and cross-machine directions for a foam that is about 100 mils thick.

EXAMPLES

[0035] Various blowing agents were tested with the results shown below in Tables 1 and 2. Specifically, several foams were made from comparative blowing agents and inventive blowing agent blends. It should be noted that in the various examples reported in Tables 1 and 2, the hardware was the same and operated in exactly the to same way, the only variable was the blowing agent blend. All of the inventive blowing agent blends included (a) isopentane and (b) either ethane, n-propane, isobutane, butanes (a combination of isobutane and n-butane), 1,1,1,2-tetrafluoroethane (HFC-134a), dimethyl ether, or combinations thereof. The comparative blowing agents did not include isopentane, but rather included either ethane, n-propane, isobutane, butanes (a combination of isobutane and n-butane), HFC-134a, or combinations thereof.

[0036] Each of the foams was made with low density polyethylene (LDPE) having a density of 0.920 g/cm3 and a melt index of 2.0 g/10 min at 190° C. In addition to the blowing agents and the LDPE resin, glycerol monostearate and talc were added in forming the foams. Glycerol monostearate, a stability control agent, was added at a concentration level of about 1 wt % of the total solids, and, talc, a nucleating agent, was added at a concentration level of about 0.1 to 1.0 wt % of total solids. Each of the foam samples, except Inventive Foams 5, 10, and 11, was made on a pilot line. The pilot line is a tandem extrusion line employing 2.5 inch and 3.5 inch single-screw extruders equipped with three ports in the primary extruder for injecting compressed fluids. The foaming temperature used in the pilot line was 107° C. and the foams were produced with a blow-up ratio of either 3.7 or 4.1. The blow-up ratio used to make each foam is identified in the footnotes to Tables 1 and 2 below. The extruded foam tube was stabilized over a mandrel, and then slit to form a sheet.

[0037] Unlike the other foams reported in Tables 1 and 2, Inventive Foams 5, 10 and 11 were made on a miniline. The miniline is a tandem extrusion line employing 1.25 inch and 1.5 inch single-screw extruders. Otherwise, the operating conditions of the miniline were the same as those of the pilot line described above.

[0038] The densities of the resulting foams were measured using ASTM D3575. The corrugation, if any, of the foam was determined as twice the amplitude of the sine wave that rides along the circumference of the extruded tube. The corrugation of the foams made on the miniline (Inventive Foams 5, 10, and 11) was not measured because of the small sample size. 1

TABLE 1 1,2,3
Blowing Agent (Composition in mol %) No. of
Sample No HFC- Density Gage Cells Corrugation
(Comp/Inv)4 Ethane n-C35 134a DME6 i-C47 Butanes8 i-C59 (lbs/ft3) (mils) (Per inch) (mils)
Comp 1 0 0 0 0 0 100 0 20 125 29 50
Comp 2 0 0 0 0 0 100 0 12 128 30 87
Comp 3 0 0 0 0 100 0 0 12 127 28 235
Comp 4 0 0 0 0 100 0 0 2.0 127 30 35
Inv 5 0 0 0 0 35 0 65 18 181 11 NA10
Inv 6 0 0 0 0 0 70 30 14 87 24 0
lnv 7 0 0 0 0 50 0 50 15 78 24 0
lnv 8 0 0 0 0 60 0 40 13 87 24 0
Inv 9 0 0 0 0 68 0 32 20 127 30 0
Inv 10 0 0 15 0 0 0 85 32 130 12 NA
Inv 11 0 0 30 0 0 0 70 35 130 15 NA
Comp 12 0 100 0 0 0 0 0 21 110 28 80
Comp 13 0 100 0 0 0 0 0 12 98 33 107
Inv 14 0 80 0 0 0 0 20 20 98 28 0
Inv 15 0 47 13 0 0 0 40 12 98 28 40
Inv 16 0 15 0 0 70 0 15 22 123 30 0
Inv 17 0 7 0 0 68 0 25 20 127 30 0
Inv 18 0 14 0 0 66 0 20 20 125 30 0
1Comparative Samples 1, 2, 12 and 13, and Inventive Samples 6-8 and 14-15 were made on the pilot line with a blow-up ratio of 4 1
2Comparative Samples 3 and 4, and Inventive Samples 9 and 16-18 were made on the pilot line with a blow-up ratio of 3 7
3Inventive Samples 5, 10 and 11 were made on the miniline with a blow-up ratio of 3
4“Comp” = Comparative Sample, “Inv” = Inventive Sample
5n-C3 = n-propane
6DME = Dimethyl ether
7i-C4 = Isobutane
8Butanes = A blend of 65 mol % isobutane and 35 mol % n-butane, generally known as A26
9i-C5 = Isopentane
10NA = Not Available

[0039] All of the above foams of Table 1 were dimensionally stable because their density did not deviate more than about 15% as compared to the foam density at the time of production. It was generally observed that the level of corrugation of the foam increased as the relative amount of isopentane was reduced or the relative amount of the co-blowing agent was increased.

[0040] Specifically, the corrugation of Comparative Foams 1-4 (a blowing agent of either isobutane or butanes) was greater than the corrugation of Inventive Foams 6-9 (a blowing agent of isopentane with either isobutane or butanes). Compare corrugation levels of 35-235 mils of Comparative Foams 1-4 to 0 mil of Inventive Foams 6-9. Similarly, the corrugation of Comparative Foams 12-13 (a blowing agent of n-propane) was greater than the corrugation of Inventive Foam 14 (a blowing agent of 80 mol % n-propane and 20 mol % isopentane). Compare corrugation levels of 80 and 107 mils of Comparative Foams 12 and 13, respectively, and 0 mil of Inventive Foam 14. It was surprising that the corrugation levels of Inventive Foams 6, 7-9 and 14 decreased significantly as compared to the corrugation levels of Comparative Foams 1-2, 3-4, and 12-13, respectively, by replacing a portion of the butanes, isobutane or n-propane with isopentane. 2

TABLE 21,2
Blowing Agent (Compostion in mol %) No of
Sample No. HFC Density Gage Cells Corrugation
(Comp/Inv)3 Ethane n-C34 134a DME5 i-C46 Butanes i-C58 (lbs/ft3) (mils) (Per inch) (mils)
Comp 19 10 0 0 0 90 0 0 20 102 28 100
Inv 20 10 0 0 0 65 0 25 20 96 28 80
Comp 21 25 0 0 0 75 0 0 20 102 30 75
Inv 22 25 0 0 0 45 0 30 21 94 30 60
Comp 23 40 0 0 0 60 0 0 20 96 28 60
Inv 24 40 0 0 0 30 0 30 21 95 28 60
Comp 25 0 0 15 0 85 0 0 12 87 40 73
Inv 26 0 0 15 0 70 0 15 19 123 30 0
Inv 27 0 0 13 0 0 57 30 13 108 26 42
Inv 28 0 0 0 15 70 0 15 12 127 30 167
Inv 29 0 0 0 15 70 0 15 19 118 30 105
Inv 30 0 0 0 7 68 0 25 20 125 30 0
Inv 31 0 0 0 14 57 0 29 20 122 29 0
Inv 32 0 0 0 13 66 0 21 21 128 29 0
1Comparative Sample 25 and Inventive Sample 27 were made on the pilot line wtth a blow up ratio of 4 1
2Comparative Samples 19, 21, and 23 and Inventive Samples 20, 22, 24, 26, and 28-32 were made on the pilot line with a blow up ratio of 3 7
3“Comp” = Comparative Sample, “Inv” = Inventive Sample
4n-C3 = n-propane
5DME = Dimethyl ether
6i-C4 = Isobutane
7Butanes = A blend of 65 mol % and 35 mol % n-butane, generally known as A26
8i-C5 = Isopentane

[0041] All of the above foams of Table 2 were dimensionally stable because their density did not deviate more than about 15% as compared to the density of the foam at the time of production. It was generally observed that the level of corrugation of the foam increased as the relative amount of isopentane was reduced or the relative amount of the volatile blowing agent was increased, as demonstrated in Inventive Foams 29 and 31. Specifically, the corrugation of Comparative Foam 19 (a blowing agent of 10 mol % ethane and 90 mol % isobutane) was greater than the corrugation of Inventive Foam 20 which replaced some of the isobutane with isopentane. Compare corrugation levels of 100 mils of Comparative Foam 19, and 80 mils of Inventive Foam 20. Similarly, the corrugation of Comparative Foam 21 (a blowing agent of 25 mol % ethane and 75 mol % isobutane) was slightly greater than the corrugation of Inventive Foam 22 in which some of the isobutane was replaced by isopentane. Compare 75 mils of Comparative Foam 21, and 60 mils of Inventive Foam. Additionally, the corrugation of Comparative Foam 25 (a blowing agent of isobutane and HFC-134a) was greater than the corrugation of Inventive Foam 26 which replaced some of the isobutane with isopentane. Compare corrugation levels of 73 mils of Comparative Foam 25, and 0 mil of Inventive Foam 26. It was surprising that the corrugation levels of Inventive Foams 20, 22 and 26 were less than the corrugation levels of Comparative Foams 19, 21, and 25, respectively, by replacing a portion of the isobutane with isopentane.

[0042] While the present invention has been described with reference to one or more particular embodiments, those skilled in the art will recognize that many changes may be made thereto without departing from the spirit and scope of the present invention. Each of these embodiments and obvious variations thereof is contemplated as falling within the spirit and scope of the claimed invention, which is set forth in the following claims.

What is polyolefin?
A polyolefin is a type of polymer with the general formulaₙ where R is an alkyl group. They are usually derived from a small set of simple olefins. Dominant in a commercial sense are polyethylene and polypropylene. More specialized polyolefins include polyisobutylene and polymethylpentene. They are all colorless or white oils or solids. Many copolymers are known, such as polybutene, which derives from a mixture of different butene isomers. The name of each polyolefin indicates the olefin from which it is prepared; for example, polyethylene is derived from ethylene, and polymethylpentene is derived from 4-methyl-1-pentene. Polyolefins are not olefins themselves because the double bond of each olefin monomer is opened in order to form the polymer. Monomers having more than one double bond such as butadiene and isoprene yield polymers that contain double bonds and are usually not considered polyolefins. Polyolefins are the foundations of many chemical industries.

How are polyolefins made?
The major processes for polyolefins’ production using Ziegler–Natta catalysts involve polymerization in the gas phase or in slurry, including bulk liquid monomer in the case of propylene. LLDPE is also produced via a solution process operating at temperatures in the range 130–250 °C. Polyolefins are produced using refined metallocene catalysts that have a constrained transition metal (generally a Group 4B metal such as Ti, Zr, or Hf) sandwiched between one or more cyclopentadienyl ring structures to form a sterically hindered polymerization site. Polyolefins, also called polyalkenes, are the largest class of commodity thermoplastics. They are polymers of simple alkenes such as ethylene, propylene, butenes, and pentenes, and copolymers thereof. The two most important polyolefins are polyethylene (PE) and polypropylene (PP).

What was the production of polyolefins in 2000?
Polyolefin fibre production by year 2000 was over 1.45 Mt (3.18 billion lb), while the polyester total was 1.76 Mt (3.87 billion lb).

How big is the global market for polyolefins?
Presently, the total world polyolefins capacity exceeds 120 million tons per year. Polyethylene (i.e., HDPE, LDPE and LLDPE) and polypropylene cover 60 % and 40 % of the total polyolefins production, respectively. The annual world-wide polyolefins market growth in the coming years is foreseen to be 4-6%.

What are the industrial applications of polyolefin fibres?
Polyolefin fibres, in particular slit films and monofilament, are used in industrial applications to manufacture ropes, cordages, agricultural nets, and FIBCs (flexible intermediate bulk containers).

Major Manufacturers of Polyolefin and Suppliers of Polyolefin in the World

  • LG Chem Ltd.
  • Constab Polyolefin Additives GmbH
  • Mc Tohcello (Malaysia) Sdn Bhd
  • Dow Europe GmbH
  • SK Chemicals
  • Deutsche Infineum GmbH
  • Bagla Polifilms Ltd.
  • Siam Synthetic Latex Co., Ltd.
  • Hoyer France
  • Lubrizol France

TOP 40 POLYOLEFIN PRODUCERS (POLYPROPYLENE, POLYETHYLENE & COPOLYMERS)

  • Alpek
  • Arkema
  • Borealis Group
  • Borouge
  • Braskem
  • Chevron-Phillips
  • CNPC
  • Dow
  • DuPont
  • Eastman
  • ENI
  • ExxonMobile
  • Formosa Plastics
  • Hanwha
  • Indorama
  • Ineos
  • KAP
  • Kayavlon Impex
  • LCY Chemical
  • LG Chem
  • Lyondellbasell
  • Mitsubishi
  • Mitsui Chemicals
  • Mol Group
  • Nova Chemicals
  • Petkim
  • Petroquim
  • Polyone
  • Quenos
  • Reliance
  • Repsol
  • Sabic
  • Sasol
  • Saudi Polymers
  • SCG Chemical
  • SEPC
  • Sibur
  • Sinopec
  • Sipchem
  • SK Global Chemical
  • Sumitomo
  • Tosoh
  • Total
  • TPC
  • UBE Industries
  • Westlake

Pentane, Hexane and Heptane Prices, Upstream, Downstream, Analytics & Forecasts
Junyuan Petroleum GroupDongying Liangxin Petrochemical Technology Development Limited Company | Address: No. 117, Guangqing Rd., Guangrao County, Dongying 257345 China.
Junyuan Petroleum Group is China’s largest manufacturer of blowing agents to the foam insulation markets. We have continued to grow with the development of next generation blowing agents, offering a variety of hydrocarbon products for the PIR, PUR and EPS markets, available in ISO tanks and drums. For more information, or for pricing please contact us: +86 178 1030 0898 Email: info@junyuanpetroleumgroup.com Web: www.junyuanpetroleumgroup.com.
China is the world’s largest buyer and drives prices in Asia and the global solvent trade. Our comprehensive news and pricing coverage of China and global solvent market is constantly updated by our raw material purchase, production and sales team of experts. Solvent markets can react to change quickly. It’s crucial for buyers, sellers and producers to stay alert and aware of what’s happening, both in their region and internationally. We help you stay abreast of change as it’s happening. We keep you informed of the current price and market position, so you can make the most of opportunities to trade or secure a deal.

Isopentane – a solvent for catalyst in polyethylene production

Isopentane has high economic value and can be used as an additive to improve the octane number of gasoline, a solvent for catalyst in polyethylene production and an important raw material for the production of isoprene and isopentanol.

In terms of isopentane production, North America, Western Europe and Japan are the main isopentane producing countries in the global market, with a large number of relevant production enterprises, such as Amoco, Eastman and piccolo in the United States, Mitsui petrochemicals, ryon and Fuji in Japan, and ICI and Hercules in Europe. As developed countries have the first mover advantage of technology, they are relatively mature in the production of C5 fine chemicals and occupy a leading position in the global C5 fine chemical market.

The main isopentane production enterprises in China are distributed in East China, Northeast China and Northwest China. Among them, isopentane production enterprises in East China are distributed in Dongying City, Shandong Province. The most important enterprise is Junyuan Petroleum Group and who is also the largest manufacturer of pentanes in China.

In 2022, the market scale of isopentane in China was 835 million yuan, with a year-on-year increase of 7.9%; In 2021, the market scale of isopentane in China was 666 million yuan, with a year-on-year increase of 8.9%; In 2020, the market scale of isopentane in China was 930 million yuan, with a year-on-year increase of 9.4%; In 2020, China’s isopentane market reached 906 million yuan, with a year-on-year increase of 9.1%; In the first half of 2021, China’s isopentane market reached 496 million yuan, a year-on-year increase of 9.4%.

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