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Experimental Validation of Grain Structure and Microporosity Simulation for Equiaxed Al A356 Castings

机译:等轴A356铸件对晶粒结构和微孔仿真的实验验证

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In order to comprehensively model both the performance and inspectability of early design stage, safety-critical aluminum castings, the size, shape and location of defects, such as pores, should be determined by simulation. In this work, the proposed two-dimensional model that couples hydrogen gas evolution and microporosity formation mechanisms with probabilistic grain nucleation to predict grain size, pore size, shape and location is experimentally evaluated. New experiments with improved casting geometry are performed to test and verify the model. The effect of grain refinement on grain size and pore size for equiaxed aluminum alloy A356 is examined. From a comparison of experimental macro and micrometallographic images with simulation results, it is concluded that the model is able to simulate the effect of grain refinement on grain size, pore size and distribution. The predicted grain size and area fraction of porosity show good agreement with experimental observations.
机译:为了全面模型早期设计阶段的性能和检查性,安全关键铝铸件,缺陷的尺寸,形状和位置,如孔隙,应通过模拟来确定。在这项工作中,提出的二维模型,与概率晶粒成核,以预测晶粒颗粒,孔径,形状和位置的提出的二维模型进行了实验评估。进行改进的铸造几何形状的新实验进行测试和验证模型。研究了晶粒细化对等轴铝合金A356的晶粒尺寸和孔径的影响。从实验宏观和微金尘图像进行仿真结果的比较,得出结论,该模型能够模拟晶粒细化对粒度,孔径和分布的影响。预测的晶粒尺寸和面积分数与实验观察结果良好。

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