摘要:
A method is disclosed of manufacturing a transparent wear resistant surface layer (1). The method comprising the steps of, applying a decorative material on a carrier, applying a dry powder layer comprising a mix of processed wood fibres, binder and wear resistant particles above the decorative layer, curing the mix to a decorative surface, comprising the transparent wear resistant layer, by applying heat and pressure on the mix. In a preferred embodiment the method comprises the step of pressing the mix against an embossed matrix to create an embossed decorative surface with high wear resistance.
摘要:
A shrink film comprising a polyethylene-based film having a top surface, a bottom surface, and comprising one or more layers, wherein at least one layer of the polyethylene-based film comprises a low density polyethylene having a density of from 0.917 g/cc to 0.935 g/cc and melt index, I2, of from 0.1 g/10 min to 5 g/10 min, a linear low density polyethylene having a density of from 0.900 g/cc to 0.965 g/cc and melt index, I2, of from 0.05 g/10 min to 15 g/10 min, or combinations thereof, and optionally, a medium density polyethylene, a high density polyethylene, or combinations thereof, and a coating layer disposed on the top surface of the polyethylene-based film, wherein the coating layer comprises an adhesive and a near-infrared absorbent material.
摘要:
A shock wave attenuating material (100) includes a substrate layer (104). A plurality (110) of shock attenuating layers is disposed on the substrate layer (104). Each of the plurality (110) of shock attenuating layers includes a gradient nanoparticle layer (114) including a plurality of nanoparticles (120) of different diameters that are arranged in a gradient from smallest diameter to largest diameter and a graphitic layer (118) disposed adjacent to the gradient nanoparticle layer. The graphitic layer (118) includes a plurality of carbon allotrope members (128) suspended in a matrix (124).
摘要:
A shock wave attenuating material (100) includes a substrate layer (104). A plurality (110) of shock attenuating layers is disposed on the substrate layer (104). Each of the plurality (110) of shock attenuating layers includes a gradient nanoparticle layer (114) including a plurality of nanoparticles (120) of different diameters that are arranged in a gradient from smallest diameter to largest diameter and a graphitic layer (118) disposed adjacent to the gradient nanoparticle layer. The graphitic layer (118) includes a plurality of carbon allotrope members (128) suspended in a matrix (124).
摘要:
The present invention is a sealing laminated sheet for an electronic device in which a first sheet and a second sheet 5 are laminated, wherein the first sheet contains an acid-modified polyolefin-based thermoplastic resin, the second sheet 5 has a melting point higher than that of the first sheet, and a peel strength at 25°C of the second sheet 5 relative to the first sheet is 0.5 to 10.0 N/15 mm. According to the present invention, the production yield of an electronic device can be improved.
摘要翻译:本发明是一种用于在电子设备的密封层压片材,其中第一片材和第二片材5被层叠,worin第一片含有酸改性聚烯烃类热塑性树脂,所述第二片材5具有比更高的熔点 做的第一片材,和在第二相对于所述第一片材片5的25℃下的剥离强度为0.5〜10.0 N / 15mm以下。 。根据本发明,一种电子装置的制造成品率得以提高。
摘要:
The present invention is directed to timing belts having improved fabric adhesion to the tooth facing can be achieved by the use of a combination of a RFL treated fabric and an EPDM body provided the RFL treatment or the body include ZDA or the RF latex is an X-HNBR latex.
摘要:
A multilayered layered body comprising an evacuated thermal insulation body (12) having a core material (13), which is enclosed by a gas-tight film (16), wherein the thermal insulation body (12) has a first flat side (14) and a second flat side (15), which is arranged opposite of the first side, wherein the lamination layer (17) is formed by a cardboard layer and has a grammage of not less than 80 g/m2 and not greater than 220 g/m2, preferably of not less than 80 g/m2 and not greater than 120 g/m2.