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Sintering behavior of molybdenum-copper and tungsten-copper alloys by using ultrafine molybdenum and tungsten powders as raw materials

机译:用超细钼和钨粉作为原料烧结钼 - 铜和钨铜合金的烧结行为

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摘要

In this paper, high quality Mo-(10-40) wt% Cu and W-(10-40) wt% Cu alloys were prepared by powder metallurgy using the ultrafine molybdenum and tungsten powders as raw materials. The molybdenum powder with the size of 100-200 nm and tungsten powder with the size of 50-100 nm were prepared by a two-step reduction-process composed of an insufficient carbothermal reduction reaction and the following deep reduction reaction by hydrogen. From the experimental results, it was concluded that at the sintering temperature of 1200 degrees C to 1300 degrees C, relative densities of the Mo-(10-40) wt% Cu and W-(10-40) wt% Cu sintered blocks can reach > 98%, and at the same time, excellent physical and mechanical properties were achieved. Meanwhile, the larger the content of copper in the alloy, the lower the temperature required for densification. At 1300 degrees C, the relative density, microhardness and thermal conductivity of the Mo-10 wt% Cu and W-10 wt% Cu sintered blocks are 98.83% and 99.36%, 167 HV and 283 HV, 138.38 Wm(-1).k(-1) and 154.15 Wm(-1).k(-1), respectively. Whereas, at 1200 degrees C, the relative density, microhardness and thermal conductivity of the Mo-40 wt% Cu and W-40 wt% Cu sintered block are 99.68% and 98.87%, 150 HV and 207 HV, 138.38 Wm(-1).k(-1) and 154.15 Wm(-1).k(-1), respectively. The present method was much more convenient relative to the traditional infiltration method.
机译:在本文中,使用超细钼和钨粉作为原料,通过粉末冶金制备高质量的Mo-(10-40)Wt%Cu和W-(10-40)Wt%Cu合金。通过由碳热还原反应不充分的碳热还原反应组成的两步​​还原工艺制备尺寸为100-200nm和尺寸为50-100nm的钨粉的钼粉末制备。从实验结果中,得出结论,在1200℃至1300℃的烧结温度下,Mo-(10-40)重量%Cu和W-(10-40)Wt%Cu烧结块的相对密度达到> 98%,同时实现了优异的物理和机械性能。同时,合金中铜的含量越大,致密化所需的温度越低。在1300℃下,MO-10wt%Cu和W-10wt%Cu烧结块的相对密度,微硬度和导热率为98.83%和99.36%,167hV和283HV,138.38Wm(-1)。 K(-1)和154.15 WM(-1).k(-1)分别。然而,在1200℃下,MO-40wt%Cu和W-40wt%Cu烧结块的相对密度,微硬度和导热率为99.68%和98.87%,150hV和207HV,138.38WM(-1 ).k(-1)和154.15 wm(-1).k(-1).k(-1)。相对于传统渗透法,本方法更方便。

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