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首页> 外文期刊>Metals >Tungsten Matrix Composite Reinforced with CoCrFeMnNi High-Entropy Alloy: Impact of Processing Routes on Microstructure and Mechanical Properties
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Tungsten Matrix Composite Reinforced with CoCrFeMnNi High-Entropy Alloy: Impact of Processing Routes on Microstructure and Mechanical Properties

机译:CoCrFeMnNi高熵合金增强钨基复合材料:加工路线对组织和力学性能的影响

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摘要

Tungsten heavy alloy composite was developed by using novel CoCrFeMnNi high-entropy alloy as the binder/reinforcement phase. Elemental tungsten (W) powder and mechanically alloyed CoCrFeMnNi high-entropy alloy were mixed gently in high energy ball mill and consolidated using different sintering process with varying heating rate (in trend of conventional sintering microwave sintering spark plasma sintering). Mechanically alloyed CoCrFeMnNi high-entropy alloy have shown a predominant face-centered cubic (fcc) phase with minor Cr-rich σ-phase. Consolidated tungsten heavy high-entropy alloys (WHHEA) composites reveal the presence of Cr–Mn-rich oxide phase in addition to W-grains and high-entropy alloys (HEA) phase. An increase in heating rate restricts the tungsten grain growth with reduces the volume fraction of the Cr–Mn-rich phase. Finally, spark plasma sintering with a higher heating rate and shorter sintering time has revealed higher compressive strength (~2041 MPa) than the other two competitors (microwave sintering: ~1962 MPa and conventional sintering: ~1758 MPa), which may be attributed to finer W-grains and reduced fraction of Cr–Mn rich oxide phase.
机译:以新型CoCrFeMnNi高熵合金为结合剂/增强相,研制了钨重合金复合材料。在高能球磨机中将元素钨(W)粉末和机械合金化的CoCrFeMnNi高熵合金轻轻混合,并通过不同的烧结工艺以不同的加热速率进行固结(这是常规烧结<微波烧结<火花等离子体烧结的趋势)。机械合金化的CoCrFeMnNi高熵合金显示出主要的面心立方(fcc)相和少量的富铬σ相。固结的钨重质高熵合金(WHHEA)复合材料显示,除了W晶粒和高熵合金(HEA)相之外,还存在富Cr-Mn的氧化物相。加热速率的提高限制了钨晶粒的生长,并降低了富Cr-Mn相的体积分数。最后,具有较高加热速率和较短烧结时间的火花等离子体烧结显示出比其他两个竞争对手(微波烧结:〜1962 MPa和常规烧结:〜1758 MPa)更高的抗压强度(〜2041 MPa)。更细的W晶粒和减少的Cr-Mn富氧化物相。

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