首页> 外文期刊>Ceramic Engineering and Science Proceedings >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:放电等离子烧结碳化锆的激光熔解:第四代非常高温反应器材料的热物理性质

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摘要

Commercial ZrC_(0.96) powder (ABCR, Karlsruhe, Germany) was densified by spark plasma sintering to greater than 96% relative density at temperatures of 1900-2180℃, 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℃) 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:在1900-2180℃的温度,40-100 MPa的施加压力和6-30分钟的浸泡时间下,通过火花等离子体烧结将ZrC_(0.96)商业粉末(ABCR,德国卡尔斯鲁厄)致密化到相对密度大于96%。 。工艺参数对微结构的影响通过陶瓷检查来评估。高温(> 2000℃)比高压更有助于完全致密化,过度的升温速率导致高残留孔隙率。延长等温停留时间可促进晶粒粗化。作为探测极端高温相变的新型热分析技术的一部分,激光加热被用于熔化烧结的陶瓷。达到的温度远远超过ZrC的预期熔化温度,最高达到4000K。证明了该技术在碳化锆中检测熔融转变的技术的可行性,并测量了在预测值的50-80 K之内的固相线和液相线温度。激光熔融标本的熔融后分析显示,树枝状微观结构和成分与单相ZrC一致。

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