首页> 外文会议>ASME 2nd Multifunctional Nanaocomposites and Nanomaterials and Nanomaterials Conference: Design and Modeling of Nanomaterials... >MECHANICAL PROPERTIES OF Cu-based AMORPHOUS ALLOY MATRIX COMPOSITES CONSOLIDATED BY SPARK PLASMA SINTERING
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MECHANICAL PROPERTIES OF Cu-based AMORPHOUS ALLOY MATRIX COMPOSITES CONSOLIDATED BY SPARK PLASMA SINTERING

机译:放电等离子烧结固溶铜基非晶合金基体的力学性能

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In this study, microstructure and mechanical properties of Cu-based amorphous alloy matrix composites consolidated by spark plasma sintering (SPS) equipment were investigated. Amorphous alloy powders were mixed with 10-40 vol.% of pure Cu powders, and were consolidated at 460℃ for 1/2 minute under 300 or 700 MPa. The consolidated composites contained Cu particles homogeneously distributed in the amorphous matrix, and showed a considerable plastic strain, whereas their compressive strength was lower than that of the monolithic amorphous alloys. The compressive strength and plastic strain of the composites consolidated under 700 MPa showed 10~20% and two times increases, respectively, over those of the composites consolidated under 300 MPa. The increase in consolidation pressure could play a role in sufficiently bonding between prior amorphous powders, in preventing micropores, and in suppressing the crystallization, thereby leading to the successful consolidation of the high-quality composites. Microfracture mechanisms were investigated by directly observing microfracture processes using an in situ loading stage. Cu particles present in the composites acted as blocking sites of crack propagation, and provided the stable crack growth. These findings suggested that the composites consolidated by the SPS presented new possibilities of application to structural materials or parts requiring excellent mechanical properties and large sizes.
机译:在这项研究中,研究了通过火花等离子体烧结(SPS)设备固结的铜基非晶合金基复合材料的组织和力学性能。将非晶态合金粉末与10-40%(体积)的纯铜粉末混合,并在460℃,300或700 MPa下固结1/2分钟。固结的复合材料包含均匀分布在非晶态基体中的Cu颗粒,并表现出相当大的塑性应变,而其抗压强度低于整体非晶态合金。在300 MPa下固结的复合材料的抗压强度和塑性应变分别比在300 MPa下固结的复合材料的抗压强度和塑性应变分别高出10〜20%和两倍。固结压力的增加可以在现有的无定形粉末之间充分粘合,防止微孔并抑制结晶中发挥作用,从而导致高质量复合材料的成功固结。通过使用原位加载阶段直接观察微破裂过程来研究微破裂机制。复合材料中存在的Cu颗粒充当裂纹扩展的阻挡点,并提供稳定的裂纹扩展。这些发现表明,由SPS固结的复合材料为应用于要求优异机械性能和大尺寸的结构材料或零件提供了新的可能性。

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