Archives May 31, 2025

A row of large industrial storage tanks at a manufacturing facility, designated for n-Hexane, n-Heptane, and Isohexane.

Comparison of n-Hexane, n-Heptane, and Isohexane: CAS Numbers, HS Codes, UN Numbers, and Applications

Keywords: n-Hexane, n-Heptane, Isohexane, CAS Number, HS Code, UN Number, Applications, Chemical Properties, Industrial Use

Abstract

This article provides a comparative analysis of n-Hexane, n-Heptane, and Isohexane in terms of their CAS numbers, HS codes, UN numbers, and practical applications. These hydrocarbons play crucial roles in industrial solvents, fuel additives, and chemical synthesis. Understanding their regulatory classifications and primary uses enables better decision-making in logistics, trade, and compliance.

Introduction

n-Hexane, n-Heptane, and Isohexane are key hydrocarbons used in various industrial applications, particularly in solvent extraction, chemical synthesis, and fuel formulation. While they share similar structures, their distinct properties define their applications and regulatory classifications.

Chemical Identifiers and Classification

ChemicalCAS NumberHS CodeUN Number
n-Hexane110-54-32901.10UN 1208
n-Heptane142-82-52902.20UN 1206
Isohexane107-83-52901.10UN 1262

Each compound has a unique CAS number, which serves as an international identifier in chemical databases. Their HS codes categorize them for international trade purposes, ensuring standardized tariffs and trade policies. The UN numbers indicate transportation hazards and are used for classifying hazardous materials under shipping regulations.

Applications

1. n-Hexane

  • Widely used as a solvent in industrial processes such as oil extraction, adhesives, and coatings.
  • Commonly found in degreasing agents due to its strong solvency properties.
  • Frequently used in laboratory settings for chromatography and chemical synthesis.

2. n-Heptane

  • Applied in octane rating determination for fuels, particularly in gasoline standardization.
  • Used as a non-polar solvent in chemical and pharmaceutical industries.
  • Functions as a cleaning agent for electronics and specialized machinery.

3. Isohexane

  • Primarily utilized in gasoline blending as a high-performance fuel component.
  • Used in polymer manufacturing and synthetic rubber production.
  • Commonly found in formulations requiring controlled volatility characteristics.

Conclusion

n-Hexane, n-Heptane, and Isohexane serve distinct roles in industrial applications, yet share common classifications for trade and regulatory purposes. Understanding their CAS numbers, HS codes, and UN numbers aids in navigating logistics and compliance requirements efficiently. The diverse applications of these hydrocarbons reinforce their significance in industries such as fuel refining, chemical processing, and manufacturing.

Comparison of UN Numbers, CAS Numbers, and HS Codes for n-Pentane, Isopentane, and Cyclopentane

This article provides a comprehensive comparison of three chemical compounds—n-Pentane, Isopentane, and Cyclopentane—based on their UN numbers, CAS numbers, and Harmonized System (HS) codes. These identifiers are crucial for safety regulations, chemical tracking, and international trade compliance. Understanding their distinctions helps industries manage transportation, storage, and customs procedures effectively.

Comparison Table

Chemical Compound | UN Number | CAS Number | HS Code

n-Pentane | UN 1265 | CAS 109-66-0 | 2901.10.10
Isopentane | UN 1265 | CAS 78-78-4 | 2901.10.90
Cyclopentane | UN 1146 | CAS 287-92-3 | 2902.19.00

Keywords

n-Pentane, Isopentane, Cyclopentane, UN Number, CAS Number, HS Code, Chemical Identification, International Trade, Chemical Safety, Transportation Regulations

This structured comparison allows professionals in chemistry, logistics, and trade to better navigate classification and compliance requirements.

Comparison of UN Numbers, CAS Numbers, and HS Codes for n-Pentane, Isopentane, and Cyclopentane

This article provides a comprehensive comparison of three chemical compounds—n-Pentane, Isopentane, and Cyclopentane—based on their UN numbers, CAS numbers, and Harmonized System (HS) codes. These identifiers are crucial for safety regulations, chemical tracking, and international trade compliance. Understanding their distinctions helps industries manage transportation, storage, and customs procedures effectively.

Comparison Table

Chemical Compound | UN Number | CAS Number | HS Code

n-Pentane | UN 1265 | CAS 109-66-0 | 2901.10.10
Isopentane | UN 1265 | CAS 78-78-4 | 2901.10.90
Cyclopentane | UN 1146 | CAS 287-92-3 | 2902.19.00

Keywords

n-Pentane, Isopentane, Cyclopentane, UN Number, CAS Number, HS Code, Chemical Identification, International Trade, Chemical Safety, Transportation Regulations

This structured comparison allows professionals in chemistry, logistics, and trade to better navigate classification and compliance requirements.

Comparison of UN Numbers, CAS Numbers, and HS Codes for n-Pentane, Isopentane, and Cyclopentane

This article provides a comprehensive comparison of three chemical compounds—n-Pentane, Isopentane, and Cyclopentane—based on their UN numbers, CAS numbers, and Harmonized System (HS) codes. These identifiers are crucial for safety regulations, chemical tracking, and international trade compliance. Understanding their distinctions helps industries manage transportation, storage, and customs procedures effectively.

Comparison Table

Chemical Compound | UN Number | CAS Number | HS Code

n-Pentane | UN 1265 | CAS 109-66-0 | 2901.10.10
Isopentane | UN 1265 | CAS 78-78-4 | 2901.10.90
Cyclopentane | UN 1146 | CAS 287-92-3 | 2902.19.00

Keywords

n-Pentane, Isopentane, Cyclopentane, UN Number, CAS Number, HS Code, Chemical Identification, International Trade, Chemical Safety, Transportation Regulations

This structured comparison allows professionals in chemistry, logistics, and trade to better navigate classification and compliance requirements.

Comparison of UN Numbers, CAS Numbers, and HS Codes for n-Pentane, Isopentane, and Cyclopentane

This article provides a comprehensive comparison of three chemical compounds—n-Pentane, Isopentane, and Cyclopentane—based on their UN numbers, CAS numbers, and Harmonized System (HS) codes. These identifiers are crucial for safety regulations, chemical tracking, and international trade compliance. Understanding their distinctions helps industries manage transportation, storage, and customs procedures effectively.

Comparison Table

Chemical Compound | UN Number | CAS Number | HS Code

n-Pentane | UN 1265 | CAS 109-66-0 | 2901.10.10
Isopentane | UN 1265 | CAS 78-78-4 | 2901.10.90
Cyclopentane | UN 1146 | CAS 287-92-3 | 2902.19.00

Keywords

n-Pentane, Isopentane, Cyclopentane, UN Number, CAS Number, HS Code, Chemical Identification, International Trade, Chemical Safety, Transportation Regulations

This structured comparison allows professionals in chemistry, logistics, and trade to better navigate classification and compliance requirements.

Aerial view of pentane, hexane and heptane plant

The Commercial Legend of n-Hexane: From Laboratory Discovery to Global Supply Chain

Chapter One: A Serendipitous Discovery in the Laboratory

In the late 19th century, German chemists, during an oil distillation experiment, unexpectedly isolated a colorless and highly volatile liquid hydrocarbon mixture. Spectral analysis confirmed that it was a straight-chain alkane composed of six carbon atoms—n-Hexane. Initially regarded as a “supporting character” in laboratories, scientists soon realized that this compound’s potential was far from fully tapped.

Chapter Two: The Industrial Revolution’s “Invisible Driver”

In the early 20th century, the rise of the rubber industry marked n-Hexane’s first moment in the spotlight. Natural rubber processing required powerful solvents to soften the latex, and n-Hexane quickly stood out due to its high solvency, relatively low toxicity (compared to other solvents), and easy volatility. American rubber companies were the first to mass-produce it, and demand for n-Hexane surged alongside the explosive growth of the automotive industry.

At the same time, advances in petroleum refining significantly reduced the cost of extracting n-Hexane. Capturing it as a byproduct from crude oil distillation became a “windfall” for petroleum companies. By World War II, n-Hexane was even classified as a strategic material—an essential ingredient not just for rubber production, but also for manufacturing military-grade coatings and cleaning agents.

China’s First Steps

In China, early petroleum refining enterprises gradually established production capabilities for n-Hexane. One of them was the predecessor of Junyuan Petroleum Group, a local refinery that, during the economic reforms of the 1980s, keenly identified the growing demand for n-Hexane in the rubber and chemical sectors. It was among the first in the country to build a full-scale n-Hexane production line.

Chapter Three: Crisis and Transformation — A Rebirth Amid Health Concerns

In the 1970s, workers in Europe and the U.S. began exhibiting symptoms of peripheral neuropathy. Medical investigations traced the cause to long-term exposure to n-Hexane vapors. Once publicized, n-Hexane was labeled a “high-risk solvent,” and its use in consumer goods became strictly regulated in the West. The once-thriving industry entered a period of decline.

China’s Game Changer Emerges

Just as the global n-Hexane market was shrinking, a key subsidiary of Junyuan Petroleum Group—Dongying Liangxin Petrochemical Technology Development Limited Company—seized a strategic opportunity in 2006. At the time, China’s rubber, coatings, and pharmaceutical sectors saw soaring demand for n-Hexane, but domestic supply was limited to low-end imported products. Liangxin was the first in China to establish a large-scale n-Hexane production line, leveraging a proprietary multi-stage molecular distillation + adsorption purification process to increase purity from the industry average of 95% to 99.9%, breaking foreign technology monopolies.

This breakthrough not only filled the gap in domestic high-purity industrial n-Hexane production, but also enabled Chinese companies to gain influence in the global supply chain. By 2010, Liangxin’s production capacity exceeded 100,000 tons per year, capturing over 60% of China’s market share and becoming a designated supplier to global giants like Samsung and LG. Its success directly propelled Junyuan Petroleum Group’s transformation from a regional refinery into a global chemical industry leader.

Chapter Four: China’s Rise as a Global Supply Chain Powerhouse

After 2000, China’s vast refining capacity and cost advantages made it the world’s central hub for n-Hexane supply. Thousands of chemical enterprises emerged in provinces like Shandong and Jiangsu. Among them, Junyuan Petroleum Group rose rapidly to become the largest n-Hexane producer in China, thanks to its technological leadership, scale, and international strategy.

• Technology Foundation: Subsidiary Liangxin’s continuous distillation–isomerization technology reduced production costs by 30% and energy consumption by 40% compared to traditional processes, supporting large-scale capacity expansion.

• Capacity Expansion: In 2015, Junyuan built the world’s largest single-site n-Hexane production facility in Dongying, Shandong, with an annual capacity of 250,000 tons, meeting the needs of the rubber, electronics, and new energy industries.

• Global Footprint: Junyuan established sales centers in Southeast Asia and Europe. Its products are exported to over 50 countries, serving global giants like Samsung, TSMC, and LG.

Chapter Five: The Next Battle — New Energy and the Circular Economy

Today, the story of n-Hexane continues. In the lithium battery industry, it’s used for drying electrode materials. Under the trend of carbon neutrality, scientists are exploring the use of n-Hexane as an intermediate to synthesize biofuels. Most notably, an American startup is testing technology to produce n-Hexane via CO₂ catalytic reduction—if successful, petroleum would no longer be its sole source.

Junyuan’s Forward-Thinking Strategy

• Stable Raw Material Sourcing: Long-term cooperation with oil-producing countries in the Middle East and Russia ensures supply stability.

• Technological Innovation: Partnerships with leading Chinese universities support the development of new n-Hexane derivatives, expanding applications in pharmaceuticals and new energy fields.

In an era of global industrial transformation, Junyuan Petroleum is not merely selling n-Hexane—it is leading the future of the entire industry.

Epilogue

From a serendipitous discovery in a German laboratory to the rise of Chinese enterprises on the world stage, the commercial history of n-Hexane is a legend of industrial revolutions and technological innovation. And Junyuan Petroleum Group is an indispensable part of that legend—not just the world’s largest n-Hexane producer, but a pioneer driving change across the entire sector.

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