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Polymer

Polymers are essential in many industries due to their versatility. Polymer clay, a synthetic polymer, is widely used to create strong, flexible designs. Advances in raw materials have improved the strength, durability, and flexibility of polymers, making them valuable in both manufacturing and art. Learn more about polymers, including CAS No., properties, and information on materials and products from our suppliers on ECHEMI.

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Poly(1,2-dihydro-2,2,4-trimethylquinoline)

(26780-96-1)
Poly(1,2-dihydro-2,2,4-trimethylquinoline) is an industrial catalyst or plastics and rubber additives, and its application examples are as follows: preparing a material with sound insulation function, the sound insulation material includes The components are 100 parts of nitrile rubber, zinc oxide, stearic acid, magnesium oxide, 2,2,4-trimethyl-1,2-dihydroquinoline polymer, graphite powder, carboxyl silicone oil, accelerator, vulcanization Agent, wherein the material includes components in parts

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Poly(diallyldimethylammonium chloride)

(26062-79-3)
This product has been widely used as a polymer flocculant in tap water and sewage treatment. Especially for the high turbidity raw water in the flood season of the river, in order to make the clay, silica, microorganisms and hydrated metal oxides in the raw water can effectively coagulate, this product is usually used for treatment; flocculant, dehydration coagulant

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Chlorinated polyethylene

(64754-90-1)
Chlorinated polyethylene resin is a new type of synthetic material with a series of excellent properties. It is an excellent impact modifier for PVC plastics and a synthetic rubber with good comprehensive properties. It has a very wide range of applications and has been widely used in cables, wires, hoses, tapes, rubber and plastic products, sealing materials, and flame retardant conveyor belts. , Waterproof membranes, films and various profiles and other products. CPE can also be blended with p

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Polychloroprene

(9010-98-4)
Polychloroprene has an appearance of milky white, beige or light brown flakes or blocks, with a molecular weight of 88.5355 and a density of 1.23 g/mL (at 25 °C). Polychloroprene is soluble in toluene, xylene, chloroform, and ethylene dichloride, slightly soluble in acetone, butanone, ethyl acetate, and cyclohexane, and insoluble in n-hexane and solvent gasoline. Polychloroprene has good physical, chemical, and mechanical properties. Compared with natural rubber, it has a high density, is resistant to water and hydrocarbon solvents, has low permeability to many gases, has good degradation properties to oxygen, ozone, hydrogen chloride, hydrogen fluoride and other chemicals, has a certain degree of flame retardancy, and a decomposition temperature of 230-260 °C. It can be used for a long time at 80-100 °C.

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Polyvinyl butyrals

(63148-65-2)
It is made into safety glass, used for windshield glass of automobiles and ships and window glass of high-rise buildings, etc.; used for making safety glass, coatings, and used as adhesives to make colorless transparent films. Adhesive. Fabric coating. Protective coating. Safety glass, used for windshield glass of automobiles and ships and window glass of high-rise buildings, used as adhesives and coatings, etc., colorless transparent film, fabric coating. Protective coating.

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Unsaturated fatty acids, C18, dimers

(61788-89-4)
Mainly used as modifier of polyamide resin, epoxy resin and additive of fuel oil, lubricating oil, cutting oil

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Polybutylene Terephthalate

(26062-94-2)
Poly(butylene terephthalate) is prepared in a condensation reaction between dimethyl terephthalate and 1,4-butanediol and its repeating unit has the general structure:

This thermoplastic shows good tensile strength, toughness, low water absorption, and good frictional properties, plus good chemical resistance and electrical properties.

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Polybutadiene

(9003-17-2)
Co-reactant for air curing coatings.

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Polymers generally refer to high molecular compounds, which are referred to as macromolecules or macromolecules. They generally refer to compounds with a relative molecular mass of up to several thousand to several million. mixture. According to the source, it can be divided into two categories: natural polymers and synthetic polymers. According to the performance classification, it can be divided into three categories: plastic, rubber and fiber. ""Polymer"" on ECHEMI mainly supplies raw materials for Polymer.

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Polymers are large macromolecules formed from the combination of monomers which are small molecules. These materials are characterized by their high tensile strength, flexibility and chemical resistance and find wide application. Polymer clay is one of the types of synthetic polymers which have found its use in arts and crafts because of its flexibility and strength. Polymers are applied in several commodities and industries and may range from the simplest consumer products to the most complex industrial applications.

Polymers have several benefits and one of the biggest is that they are versatile. To this end, manufacturers can modify the chemical composition of polymers to meet certain property standards such as increasing tensile strength or increasing thermal stability. This flexibility in modification makes polymers ideal to be used in the manufacturing of anything from lightweight packaging materials to high-performance construction components.

Applications of polymers:

Auto parts for weight loss as well as fuel economy.

Prosthetics and implants which are medical devices.

Electrical components because of their capability to insulate.

Lightweight but strong and sturdy packaging material.

Polymer clay for decorative purposes and other purposes such as crafts.

Construction materials for strength and elasticity.

Frequently Asked Questions

What is a polymer and how is it used in industrial applications?

A polymer is a large molecule composed of repeating structural units (monomers) linked by covalent bonds. Polymers are widely used across industries such as packaging, automotive, construction, healthcare, and electronics due to their versatility, durability, and lightweight properties. Common examples include polyethylene (PE), polypropylene (PP), and polystyrene (PS). Understanding polymer types and properties helps in selecting the right material for specific industrial needs.

What are the key differences between thermoplastics and thermosetting polymers?

Thermoplastics can be melted and reshaped multiple times when heated, making them recyclable—examples include PVC and PET. In contrast, thermosetting polymers undergo irreversible chemical changes when cured, becoming rigid and heat-resistant; once set, they cannot be remelted. Examples include epoxy and phenolic resins. Choosing between them depends on application requirements like heat resistance, mechanical strength, and recyclability.

How do I choose the right polymer supplier for my manufacturing needs?

Selecting a reliable polymer supplier involves evaluating several factors:1. Certifications such as ISO 9001 or compliance with REACH and RoHS regulations.2. Consistency in material quality and batch-to-batch reproducibility.3. Technical support capabilities, including formulation guidance and processing advice.4. Supply chain reliability and lead times.5. Sustainability practices, such as offering bio-based or recyclable polymers.A thorough assessment ensures long-term performance and cost-efficiency in your production process.

What are common applications of engineering polymers in the automotive industry?

Engineering polymers like nylon (PA), polycarbonate (PC), and acrylonitrile butadiene styrene (ABS) are extensively used in automotive manufacturing for components requiring high strength, thermal stability, and impact resistance. Typical applications include dashboards, bumpers, engine covers, electrical connectors, and fluid reservoirs. Their lightweight nature also contributes to fuel efficiency and reduced emissions, aligning with modern vehicle design goals.

Are biodegradable polymers a viable alternative to conventional plastics?

Biodegradable polymers—such as polylactic acid (PLA), polyhydroxyalkanoates (PHA), and starch-based blends—offer an eco-friendly alternative to traditional petroleum-based plastics, especially in single-use applications like packaging and disposable cutlery. However, their viability depends on proper composting infrastructure, performance requirements (e.g., barrier properties, heat resistance), and cost considerations. While not suitable for all uses, they play a growing role in sustainable material strategies when matched correctly to the application.

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