Abstract:
Poly (pentabromobenzyl acrylate) having weight average molecular weight (Mw) in the range from 4,000 to 120,000 and polydispersity index of less than 10 as determined by high temperature gel permeation chromatography, wherein the glass transition temperature of the poly (pentabromobenzyl acrylate) is not more than 150 C.°, the poly (pentabromobenzyl acrylate) includes chains which are terminated by an end group derived from a chain length regulator, wherein the end group is a thiol group —SR1, and wherein R1, is a linear or branched alkyl group composed of not less than 8 carbon atom.
Abstract:
A reinforced thermoplastic resin composition of the present invention comprises a resin component (C) which consists of 80 to 100% by mass of a polycarbonate resin (A) and 0 to 20% by mass of a specific graft copolymer (G) (wherein the total amount of the polycarbonate resin (A) and the graft copolymer (G) is 100% by mass), a recycled and/or repelletized polyethylene terephthalate resin (B), an inorganic filler (D), and a glycidyl ether unit-containing polymer (E) having a weight average molecular weight of 3,800 to 60,000 in a specified ratio.
Abstract:
Provided are glass-fiber reinforced polycarbonate compositions with high stiffness and with improved thermal and rheological behavior in combination with improved flame-retardancy properties. Said compositions can be used to produce mouldings, especially those thin-walled housing parts or switch boxes with a wall thickness from 1.0 mm to 0.75 mm in the EE and IT sectors, while still meet the requirements for the fire-protection classification UL 94 VI, preferably V0.
Abstract translation:提供了具有高刚度并具有改善的热和流变行为以及改进的阻燃性能的玻璃纤维增强聚碳酸酯组合物。 所述组合物可用于生产模制品,特别是在EE和IT部门中具有1.0mm至0.75mm厚度的薄壁壳体部件或开关盒,同时仍符合防火等级UL 94 VI ,优选为V0。
Abstract:
Provided is a resin composition that makes it possible to produce a coated electric wire in a stable manner, and is capable of offering a coated electric wire which satisfies the battery-liquid resistance, flame retardancy, low-temperature resistance, flame retardancy, and abrasion resistance each stipulated in ISO 6722 directed to electric wires for automobiles. The composition is a resin composition obtained by blending from 100 to 180 parts both inclusive by mass of a surface-treated metal hydroxide with 100 parts by mass of a base resin which includes from 40 to 60 parts both inclusive by mass of a polypropylene homopolymer, from 1 to 30 parts both inclusive by mass of a polypropylene-based modified resin, from 10 to 25 parts both inclusive by mass of a thermoplastic elastomer, and from 1 to 15 parts both inclusive by mass of a low-density polyethylene.
Abstract:
Embodiments of the present technology may include an open cell spray polyurethane foam. The foam may include a polymer. The polymer may formed by the polymerization of a reaction product of (1) a saccharide with an epoxide and (2) an isocyanate. The reaction product may have greater than 25 weight percent and less than 99 weight percent of the saccharide. The foam may exhibit a fire retardancy sufficient to pass flame tests in accordance with Appendix X and/or ASTM E-4.
Abstract:
Cables including a fire-retardant composition are disclosed. The fire-retardant compositions include an oxygen-containing base polymer, a primary filler, and an antimony-containing secondary filler. The primary filler can be a metal hydroxide. The fire-retardant composition can be halogen-free and exhibit an elongation at break of about 150% or more. The cable passes the UL 1581 VW-1 flame.
Abstract:
A composition including, as polymer basis: about 40 to 75% by weight of at least one polypropylene-based elastomer; and about 25 to 60% by weight of at least one random polypropylene copolymer.
Abstract:
A composition that contains from 30 to 95 wt. %, based on the total weight of the composition, of a thermoplastic component and an effective amount of a flow-enhancing component. The effective amount of the flow-enhancing component reduces the viscosity of the composition by at least 10% compared to the viscosity of a composition comprising the thermoplastic component, but not an effective amount of the flow-enhancing component. The thermoplastic component is selected from the group consisting of polycarbonates, polyesters, and combinations thereof. The flow-enhancing component comprises b1) a component selected from the group consisting of metal oxides, metalloid oxides, metal alkoxides, metalloid alkoxides, and combinations thereof and b2) a mineral filler component. The weight ratio of component b1) to component b2) ranges from 1:25 to 25:1. A method for enhancing the flow of compositions comprising thermoplastic components is also disclosed.