Patent classifications
C09K5/14
Rare earth regenerator material particle, rare earth regenerator material particle group, and cold head, superconducting magnet, examination apparatus, and cryopump using the same
A rare earth regenerator material particle and a regenerator material particle group having a high long-term reliability, and a superconducting magnet, an examination apparatus, a cryopump and the like using the same are provided. A rare earth regenerator material particle contains a rare earth element as a constituent component, and in the particle, a peak indicating a carbon component is detected in a surface region by an X-ray photoelectron spectroscopy analysis.
Thermally conductive resin composition and thermally conductive sheet using the same
A thermally conductive resin composition capable of maintaining high thermal conductivity and a thermally conductive sheet using the same, a thermally conductive resin composition contains an addition reaction type silicone resin, a thermally conductive filler, an alkoxysilane compound, and a carbodiimide compound in which a subcomponent is in an inactive state with respect to an alkoxysilane compound, and contains 55 to 85% by volume of the thermally conductive filler. A thermally conductive resin composition contains an addition reaction type silicone resin, an alkoxysilane compound, a thermally conductive filler, and a carbodiimide compound in which a subcomponent is in an inactive state with respect to the alkoxysilane compound, and exhibits thermal conductivity of 5 W/m*K or more after curing.
Thermally conductive resin composition and thermally conductive sheet using the same
A thermally conductive resin composition capable of maintaining high thermal conductivity and a thermally conductive sheet using the same, a thermally conductive resin composition contains an addition reaction type silicone resin, a thermally conductive filler, an alkoxysilane compound, and a carbodiimide compound in which a subcomponent is in an inactive state with respect to an alkoxysilane compound, and contains 55 to 85% by volume of the thermally conductive filler. A thermally conductive resin composition contains an addition reaction type silicone resin, an alkoxysilane compound, a thermally conductive filler, and a carbodiimide compound in which a subcomponent is in an inactive state with respect to the alkoxysilane compound, and exhibits thermal conductivity of 5 W/m*K or more after curing.
Application of amine functionalized organo silane fatty acid combo system as corrosion inhibitors in the clear emissive permanent coatings on aluminum/zinc alloy
Disclosed is a composition for applying a clear or translucent emissive coating on an aluminum containing surface. The composition includes, in a dispersion, 50 to 300 g/l of at least one of clear or translucent organic polymeric substances of a binder, and 30 to 300 g/l of sheet silicate pigments having a TE value for the thermal emissivity of at least 0.40, having a particle size distribution of which d.sub.50 is in the range of 0.3 to 80 μm and having been comminuted, disintegrated, exfoliated or any combination of these to thin particles. The composition additionally includes the reaction product of at least one aminefunctionalized organosilane and/or oligomer and/or polymer thereof and at least one fatty acid. The molar ratio of the amino group/s of the at least one amine-functionalized organosilane and/or oligomer and/or polymer thereof and of the at least one fatty acid is 1.2:1 to 1:2.
Application of amine functionalized organo silane fatty acid combo system as corrosion inhibitors in the clear emissive permanent coatings on aluminum/zinc alloy
Disclosed is a composition for applying a clear or translucent emissive coating on an aluminum containing surface. The composition includes, in a dispersion, 50 to 300 g/l of at least one of clear or translucent organic polymeric substances of a binder, and 30 to 300 g/l of sheet silicate pigments having a TE value for the thermal emissivity of at least 0.40, having a particle size distribution of which d.sub.50 is in the range of 0.3 to 80 μm and having been comminuted, disintegrated, exfoliated or any combination of these to thin particles. The composition additionally includes the reaction product of at least one aminefunctionalized organosilane and/or oligomer and/or polymer thereof and at least one fatty acid. The molar ratio of the amino group/s of the at least one amine-functionalized organosilane and/or oligomer and/or polymer thereof and of the at least one fatty acid is 1.2:1 to 1:2.
Method for preparing composites on basis of graphene bonding
The invention utilizes swelling and fusion effects of graphene oxide in a solvent to implement cross-linked bonding of a graphene material itself and materials such as polymers, metal, paper, glass, carbon materials, and ceramics. The present invention not only overcomes the shortcoming in traditional adhesives of residual formaldehyde, but also has short drying time, high bonding strength and high corrosion resistance. The present invention is widely applied in the fields of aviation, aerospace, automobiles, machinery, construction, chemical, light industry, electronics, electrical appliances, and daily life, etc.
Method for preparing composites on basis of graphene bonding
The invention utilizes swelling and fusion effects of graphene oxide in a solvent to implement cross-linked bonding of a graphene material itself and materials such as polymers, metal, paper, glass, carbon materials, and ceramics. The present invention not only overcomes the shortcoming in traditional adhesives of residual formaldehyde, but also has short drying time, high bonding strength and high corrosion resistance. The present invention is widely applied in the fields of aviation, aerospace, automobiles, machinery, construction, chemical, light industry, electronics, electrical appliances, and daily life, etc.
Thermal contact and filling material, and storage battery assembly having a thermal contact and filling material
A thermal contact and filling material having at least one thermally conductive filler and at least one silicone-free base oil. The thermally conductive filler is a metal hydroxide, in particular aluminum hydroxide, and the thermal contact and filling material also has at least one chemically crosslinkable prepolymer mixture. A storage battery assembly, in particular for a vehicle, is provided including at least one carrier, at least one storage battery element, which storage battery element is arranged on the carrier, and at least one bottom plate, wherein the carrier is arranged on the bottom plate. The storage battery assembly includes, at least between the bottom plate and the carrier and/or between the storage battery element and the carrier, a thermally conductive layer, which is formed of the thermal filling and contact material.
Thermal contact and filling material, and storage battery assembly having a thermal contact and filling material
A thermal contact and filling material having at least one thermally conductive filler and at least one silicone-free base oil. The thermally conductive filler is a metal hydroxide, in particular aluminum hydroxide, and the thermal contact and filling material also has at least one chemically crosslinkable prepolymer mixture. A storage battery assembly, in particular for a vehicle, is provided including at least one carrier, at least one storage battery element, which storage battery element is arranged on the carrier, and at least one bottom plate, wherein the carrier is arranged on the bottom plate. The storage battery assembly includes, at least between the bottom plate and the carrier and/or between the storage battery element and the carrier, a thermally conductive layer, which is formed of the thermal filling and contact material.
Increasing the heat flow of flexible cellular foam through the incorporation of highly thermally-conductive solids
Methods and combinations of mattress support surfaces comprising one or more flexible polyurethane foam layers containing highly thermally-conductive solids, such as diamond or silicon carbide, and said layer combination is capable of transferring heat from a warm surface, such as a person sleeping on a bed, to a cooler region at a faster rate throughout the mattress than the thermal dissipation rate obtained from flexible polyurethane foam without highly thermally-conductive solids.