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Numerical model for sparking and plasma formation during spark plasma sintering of ceramic compacts

机译:陶瓷压块火花等离子体烧结过程中火花和等离子体形成的数值模型

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摘要

The conditions for spark discharge and plasma formation in non-conducting ceramic granular compacts subjected to spark plasma sintering (SPS) were analyzed. The SPS plungers-die-powder assembly was modeled, whereby a compact of spherical YAG nanoparticles was considered. Electric resistance of the simulated SPS assembly versus temperature was comparable to that of the experimental SPS system. The conditions for particle surface charging and discharge were determined with respect to the applied current, the SPS temperature, and duration. Sudden increase in the electric current through the simulated granular compact was observed around 1200 A degrees C, confirming the percolative nature of the current. This finding is in agreement with the experimental densification start at 1250 A degrees C. Moreover, the electric current percolation was simulated by passing a DC current through a modeled granular compact box, comprised of resistors and capacitors which resembled the particle's surface resistivity and the inter-particle gaps, respectively. Spark discharge and plasma formation depend on connectivity within the granular compact and cease with the formation of a close-packed system.
机译:分析了在进行火花等离子体烧结(SPS)的非导电陶瓷颗粒压块中的火花放电和等离子体形成的条件。对SPS柱塞-模具-粉末组件进行了建模,从而考虑了球形YAG纳米颗粒的致密性。模拟的SPS组件相对于温度的电阻与实验的SPS系统相当。相对于施加的电流,SPS温度和持续时间来确定粒子表面充电和放电的条件。在1200 A左右的温度下,观察到通过模拟颗粒压坯的电流突然增加,这证实了电流的渗透性质。这一发现与实验致密化始于1250 A摄氏度相吻合。此外,通过将直流电流通过模拟的颗粒紧凑盒来模拟电流渗透,颗粒盒由类似于颗粒表面电阻率的电阻和电容器组成。 -颗粒间隙。火花放电和等离子体的形成取决于粒状压块内的连通性,并随着密排系统的形成而停止。

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