Influence of Spark Plasma Sintering Temperature on the Densification, Microstructure and Mechanical

来源 :Acta Metallurgica Sinica(English Letters) | 被引量 : 0次 | 上传用户:wangbenny918
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The efect of sintering temperature on the densification mechanisms,microstructural evolution and mechanical properties of spark plasma sintered(SPS)compacts of a gas atomized Al-4.5 wt.%Cu alloy was investigated.The powder particles whose size varied between 10 to 500μm was subjected to SPS at 400,450 and 500 C at a pressure of 30 MPa.The compact sintered at 500 C exhibited fully dense microstructure which was characterized by a uniform distribution of the secondary phase,free of dendrites and micro-porosity.Microscopy and the SPS data reveal that the events such as particle rearrangement,localized deformation and bulk deformation appear to be the sequence of sintering mechanisms depending on the size range of powder particles used for consolidation.The compact sintered at 500 C exhibited the highest hardness and compression strength since the microstructure was characterized by fine distribution of precipitates,large fraction of submicron grains and complete metallurgical bonding. The efect of sintering temperature on the densification mechanisms, microstructural evolution and mechanical properties of spark plasma sintered (SPS) compacts of a gas atomized Al-4.5 wt.% Cu alloy was investigated. The powder particles whose size varied varied from 10 to 500 μm was to SPS at 400 and 450 C at a pressure of 30 MPa. The compact sintered at 500 C mass fully dense microstructure which was characterized by a uniform distribution of the secondary phase, free of dendrites and micro-porosity. Microscopy and the SPS data reveal that the events such as particle rearrangement, localized deformation and bulk deformation appear to be the sequence of sintering mechanism depending on the size range of powder particles used for consolidation. The compact sintered at 500 C exhibited the highest hardness and compression strength since the microstructure was characterized by fine distribution of precipitates, large fraction of submicron grains and complete metallurgical bonding.
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