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Styrene, with the chemical formula C8H8, is a colorless, flammable liquid that serves as a key component in the production of a variety of consumer goods, including plastics, rubber, and resins. Derived from benzene, it is integral to the creation of materials used in insulation, packaging, and disposable tableware, among other products. Its versatility extends to the synthesis of polystyrene, a prevalent plastic, and the manufacturing of synthetic rubber. Despite its widespread industrial utility, styrene's potential health risks, including its classification as a possible human carcinogen by the International Agency for Research on Cancer, necessitate strict regulations to minimize human exposure.

91261-65-3

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91261-65-3 Usage

Uses

Used in Plastics Industry:
Styrene is used as a monomer for the production of polystyrene, a plastic renowned for its clarity, rigidity, and thermoplasticity. It is valued for its ability to be molded into various shapes and forms, making it suitable for a wide range of applications, from disposable cutlery to compact disc cases.
Used in Rubber Industry:
In the rubber industry, styrene is utilized as a comonomer to produce styrene-butadiene rubber (SBR), which is known for its elasticity, resilience, and resistance to wear. This synthetic rubber is commonly used in the manufacturing of tires, shoe soles, and various other rubber products.
Used in Resin Production:
Styrene is employed as a key ingredient in the synthesis of various types of resins, which are used in coatings, adhesives, and as a component in composite materials. Its role in resin production highlights its importance in providing specific properties to finished products, such as durability and resistance to environmental factors.
Used in Insulation Materials:
Styrene contributes to the creation of insulation materials due to its ability to enhance the thermal and electrical insulation properties of these products. Its presence in insulation materials is crucial for energy efficiency in various applications, including construction and electronics.
Used in Packaging Materials:
Styrene is used in the production of packaging materials for its strength and lightweight properties, which are essential for protecting packaged goods during transportation and storage. Its versatility in this application is evident in its use for food packaging, pharmaceutical containers, and other consumer product packaging.
Regulatory Considerations:
Given the potential health risks associated with styrene exposure, it is used under strict regulatory guidelines to ensure the safety of workers and consumers. These regulations set limits on the amount of styrene that can be present in the air within workplaces and in consumer products, aiming to mitigate the risks of long-term exposure.

Check Digit Verification of cas no

The CAS Registry Mumber 91261-65-3 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 9,1,2,6 and 1 respectively; the second part has 2 digits, 6 and 5 respectively.
Calculate Digit Verification of CAS Registry Number 91261-65:
(7*9)+(6*1)+(5*2)+(4*6)+(3*1)+(2*6)+(1*5)=123
123 % 10 = 3
So 91261-65-3 is a valid CAS Registry Number.

91261-65-3Downstream Products

91261-65-3Relevant academic research and scientific papers

Rubber composition for tires, tire member, and pneumatic tire

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, (2018/02/28)

Provided are rubber compositions for tires capable of providing tire components and pneumatic tires that have the same level of fuel efficiency and wet grip performance (particularly, wet grip performance) as those of tire components and pneumatic tires c

Preparation of difunctional initiators for anionic polymerization

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, (2008/06/13)

Processes for preparing a polymerization initiator precursor compound are disclosed wherein a first process involves dimerizing a halogen-diarylpropane compound to form a tetraarylhexane compound. A second process involves reacting a diaryl-propanol compound with a halogen-diarylpropane compound to form a bis(diaryl-propyl) ether compound. A third process involves reacting a halogen-diarylpropane compound with allyl halogen to form a diaryl-hexene compound.

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