POLYOLEFIN-BASED FLAME RETARDANT RESIN COMPOSITION AND MOLDED PRODUCT
    3.
    发明申请
    POLYOLEFIN-BASED FLAME RETARDANT RESIN COMPOSITION AND MOLDED PRODUCT 有权
    基于聚烯烃的阻燃树脂组合物和成型产品

    公开(公告)号:US20160304785A1

    公开(公告)日:2016-10-20

    申请号:US14440553

    申请日:2014-12-01

    申请人: LG CHEM, LTD.

    摘要: Disclosed are a polyolefin-based flame retardant resin composition and a molded product. The present invention relates to a polyolefin-based flame retardant resin composition satisfying flame retardancy (particularly, UL94V V-0, V-1, and V-2 grades, an auto ignition property of 15 seconds or less, and eco-friendly flame retardancy), improved extrusion properties, a melt index, tensile elongation, or appearance quality required in use of extruded tube molds and the like for insulation and wiring in electrical and electronic products, and vehicles using a particular phosphate-based flame retardant, and a molded product manufactured from the composition are disclosed.

    摘要翻译: 公开了聚烯烃类阻燃树脂组合物和成型体。 本发明涉及满足阻燃性的聚烯烃系阻燃树脂组合物(特别是UL94V V-0,V-1,V-2等级,15秒以下的自燃特性,环保型阻燃性 ),改进的挤出性能,熔体指数,拉伸伸长率或使用挤出管模等所需的外观质量用于电气和电子产品中的绝缘和布线,以及使用特定磷酸酯类阻燃剂的车辆,以及模制 公开了由该组合物制造的产品。

    LIGHT TRANSMISSIVE MOLDED ARTICLE AND INTERIOR PART OF AUTOMOBILE

    公开(公告)号:US20220010130A1

    公开(公告)日:2022-01-13

    申请号:US17368774

    申请日:2021-07-06

    IPC分类号: C08L69/00 B29C45/00

    摘要: The present disclosure relates to a light transmissive molded article including a base layer molded from a thermoplastic resin composition and a coating layer formed on at least one surface of the base layer, wherein peak energy PEA is equal to or greater than 40 J when impact energy of 140 J is applied with a rod having a diameter of 12.7 mm and a thickness of 3.0 mm by ASTM D3763, wherein, when being exposed at 90° C. for 500 hours, a color difference ΔE1 based on color coordinates (L*0, a*0, b*0) of a CIE LAB color space before the exposure and color coordinates (L*A, a*A, b*A) of the CIE LAB color space after the exposure satisfies Equation 1 below, and light transmittance T0 before the exposure and light transmittance TA after the exposure satisfy Equation 2 below: ΔE1≤2.0  [Equation 1] 0.95≤TA/T0≤1.05.  [Equation 2]