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首页> 外文期刊>Metals and Materials International >Fabrication of W-Cu Alloy via Combustion Synthesis Infiltration Under an Ultra-Gravity Field
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Fabrication of W-Cu Alloy via Combustion Synthesis Infiltration Under an Ultra-Gravity Field

机译:超重力场下燃烧合成渗入法制备钨铜合金

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摘要

Tungsten copper alloy with a tungsten concentrate of 70 vol% was prepared by self-propagating high-temperature synthesis in an ultra-gravity field. The phase structures and components of the W-Cu alloy fabricated via this approach were the same as those via traditional sintering methods. The temperature and stress distributions during this process were simulated using a new scheme of the finite element method. The results indicated that nonequilibrium crystallization conditions can be created for combustion synthesis infiltration in an ultra-gravity field by the rapid infiltration of the liquid copper product into the tungsten compact at high temperature and low viscosity. The cooling rate can be above 100,000 K/s and high stresses in tungsten (similar to 5 GPa) and copper (similar to 2.6 GPa) were developed, which passivates the tungsten particle surface, resulting in easy sintering and densifying the W-Cu alloy. The reliability of the simulation was verified through temperature measurement and investigation of the microstructure. The W-Cu composite-formation mechanism was also analyzed and discussed with the simulation results.
机译:通过在超重力场中自蔓延高温合成来制备钨精矿含量为70%(体积)的钨铜合金。通过这种方法制造的W-Cu合金的相结构和成分与通过传统烧结方法的相结构和成分相同。使用新的有限元方法模拟了此过程中的温度和应力分布。结果表明,通过在高温和低粘度下液态铜产物快速渗透到钨压块中,可以为超重力场中的燃烧合成渗透创造非平衡结晶条件。冷却速度可以超过100,000 K / s,并且开发出钨(约5 GPa)和铜(约2.6 GPa)的高应力,钝化钨颗粒表面,从而易于烧结和致密化W-Cu合金。通过温度测量和微观结构研究验证了仿真的可靠性。通过模拟结果对钨铜复合材料的形成机理进行了分析和讨论。

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