首页> 外文会议>International Conference on Advanced Ceramics and Composites >LASER MELTING OF SPARK PLASMA SINTERED ZIRCONIUM CARBIDE: THERMOPHYSICAL PROPERTIES OF A GENERATION IV VERY HIGH TEMPERATURE REACTOR MATERIAL
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LASER MELTING OF SPARK PLASMA SINTERED ZIRCONIUM CARBIDE: THERMOPHYSICAL PROPERTIES OF A GENERATION IV VERY HIGH TEMPERATURE REACTOR MATERIAL

机译:火花等离子体烧结锆碳化物的激光熔化:产生IV非常高温反应器材料的热物理性质

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Commercial ZrCo.96 powder (ABCR, Karlsruhe, Germany) was densified by spark plasma sintering to greater than 96% relative density at temperatures of 1900-2180°C, applied pressures of 40-100 MPa, and soak time of 6-30 min. Effects of process parameters on microstructure were assessed by ceramography. High temperature (>2000°C) was more instrumental in full densification than was high pressure, and excessive ramp rate resulted in high residual porosity. Grain coarsening was promoted by prolonging the isothermal dwell. Laser heating was used to melt sintered ceramics, as part of a novel thermal analysis technique for probing extremely high temperature phase transformations. Temperatures well in excess of the expected melting temperature of ZrC and up to 4000 K were achieved. The feasibility of the technique for detecting melting transitions in zirconium carbide was demonstrated, and solidus and liquidus temperatures within 50-80 K of predicted values were measured. Post-melting analysis of laser-melted specimens revealed dendritic microstructure and composition consistent with single phase ZrC.
机译:商用ZrCo.96粉末(ABCR,Karlsruhe,德国)通过火花等离子体烧结致密化,在1900-2180°C的温度下的相对密度大于96%,施加压力为40-100MPa,浸泡时间为6-30分钟。陶瓷评估过程参数对微观结构的影响。高温(> 2000°C)在完全致密化比高压更高的仪器,并且过高的坡度导致高残留的孔隙率。通过延长等温垃圾来促进籽粒粗化。激光加热用于熔化烧结陶瓷,作为用于探测极高温度相变的新型热分析技术的一部分。达到过超过Zrc预期熔融温度和高达4000k的温度。证明了检测碳化锆熔融转变的技术的可行性,并测量预测值50-80k内的固体和液相质温度。激光熔化试样的熔化分析显示树枝状微观结构和与单相Zrc一致的组合物。

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