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Phase-field modeling of thermomechanical damage in tungsten under severe plasma transients

机译:剧烈等离子体瞬变下钨热机械损伤的相场模拟

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Tungsten is now a primary candidate for plasma facing components in fusion energy systems because of its numerous superior thermophysical properties. International efforts are currently focused on the development of tungsten surfaces that can intercept ionized plasma and pulsed high heat flux in magnetic fusion confinement devices. Thermal shock under transient operating conditions, such as edge localized modes, have experimentally been shown to lead to severe surface and sub-surface damage. We present here a computational multiphysics model to determine the relationship between the thermomechanical loading conditions and the onset of damage and failure of tungsten surfaces. The model is based on thermo-elasto-plasticity constitutive relations, and is developed within the framework of the phase-field method. A coupled set of partial differential equations is solved for the temperature, displacement, and a damage phase fields under severe plasma transient loads. The results clearly show the initiation and propagation of surface and sub-surface cracks as a result of the transient high heat flux. The severity of surface cracking is found to correlate primarily with the magnitude of the near-surface temperature gradient.
机译:钨由于其众多优异的热物理特性,现在已成为聚变能系统中面向等离子体部件的主要候选材料。当前,国际上的努力集中在钨表面的开发上,该钨表面可以在磁聚变约束装置中截获离子等离子体和脉冲高热通量。实验证明,在瞬态操作条件下(例如边缘局部模式)的热冲击会导致严重的表面和亚表面损坏。我们在这里提出一个计算多物理场模型,以确定热机械载荷条件与钨表面损坏和破坏的开始之间的关系。该模型基于热弹塑性本构关系,并且是在相场方法的框架内开发的。求解了一组耦合的偏微分方程组,以解决在严重的等离子体瞬态载荷下的温度,位移和损伤相场的问题。结果清楚地表明了瞬态高热通量导致表面和亚表面裂纹的产生和扩展。发现表面裂纹的严重程度主要与近表面温度梯度的大小相关。

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