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SIMULATION OF AIR ENTRAINMENT IN HIGH PRESSURE DIE CASTING APPLICATIONS

机译:高压压铸应用中的引气模拟

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Since the computation of two-phase flow and solidification requires strong coupling, simulation of air entrainment in high pressure die casting applications is a challenge. The effects of surface tension, wetting angle and reduced melt flow due to solidification and air entrainment, as well as compression must be modelled with high precision. To achieve these requirements, a finite-volume method featuring arbitrary polyhedral control volumes is used to solve flow and solidification strongly coupled. The volume-of-fiuid approach is applied to capture the phase separation between gas, melt and solid in connection with a high-resolution interface-capturing scheme to obtain sharp interfaces between phases. Melt and air phase are considered to be compressible fluid. To model the resistance of the dendrite network to the melt flow, an additional source term in the momentum equation is implemented. At high fraction solid the flow is stopped completely. This methodology was applied to predict air entrainment in high pressure die castings. Basic flow patterns were validated against casting trials using a simplified geometry, and a first industrial application is reported.
机译:由于两相流和凝固的计算需要强耦合,因此在高压压铸应用中模拟空气夹带是一个挑战。必须以高精度模拟表面张力,润湿角和因凝固和夹带空气而导致的熔体流动减少以及压缩的影响。为了满足这些要求,使用具有任意多面体控制体积的有限体积方法来解决强耦合的流动和凝固问题。流体体积法结合高分辨率界面捕获方案,用于捕获气体,熔体和固体之间的相分离,从而获得相之间的尖锐界面。熔融相和空气相被认为是可压缩的流体。为了模拟枝晶网络对熔体流动的阻力,在动量方程中实现了附加的源项。固体含量高时,流动完全停止。该方法用于预测高压压铸件中的空气夹带。使用简化的几何形状对基本流型进行了铸造试验验证,并报道了其首次工业应用。

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