High wear resistant/friction reducing tin bronze base composite material
A copper-based composite material and technology of composite materials, applied in the field of copper-based composite materials, can solve the problems of carbon fiber friction reduction performance deterioration and other problems, and achieve the effects of excellent friction reduction performance, high electrical conductivity and thermal conductivity, and improved dispersibility.
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[0008] The composite composition contains (by weight) 2.1% multi-walled carbon nanotubes, 0.3% TiB 2 , and the rest are Cu-Sn alloys containing 9.5% Sn. Cu-Sn alloy powder, ball milling-nickel-coated multi-walled carbon nanotubes, TiB 2 Powder mixing, after ultrasonic vibration and mechanical stirring, nickel-coated multi-walled carbon nanotubes, TiB 2 The powder is uniformly dispersed in the Cu-Sn alloy powder. The uniformly mixed powder is pressed into shape at 750MPa, sintered in an atmosphere of decomposed ammonia at 800°C, and is prepared into a composite material as the furnace cools down. Table 1 shows the mechanical, electrical and thermal properties of the composite material of the present invention at room temperature (20°C). Table 1 Compressive strength Tensile strength Elongation Impact toughness Hardness Dry friction coefficient Thermal conductivity σ bc (MPa) σ b (MPa) δ(%) (J / cm 2 ) (HB) (GCr15 steel grinding) (J / SM·℃) 540 130 ≥2 ≥45 55 0.07-0.15 48
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