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Numerical Simulation and Experimental Casting of Nickel-Based Single-Crystal Superalloys by HRS and LMC Directional Solidification Processes

机译:HRS和LMC定向凝固工艺镍基单晶高温合金的数值模拟与实验铸造

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摘要

Mathematical models for dynamic heat radiation and convection boundary in directional solidification processes are established to simulate the temperature fields. Cellular automaton (CA) method and KurzGiovanola- Trivedi (KGT) growth model are used to describe nucleation and growth. Primary dendritic arm spacing (PDAS) and secondary dendritic arm spacing (SDAS) are calculated by the Ma-Sham (MS) and Furer-Wunderlin (FW) models respectively. The mushy zone shape is investigated based on the temperature fields, for both high-rate solidification (HRS) and liquid metal cooling (LMC) processes. The evolution of the microstructure and crystallographic orientation are analyzed by simulation and electron back-scattered diffraction (EBSD) technique, respectively. Comparison of the simulation results from PDAS and SDAS with experimental results reveals a good agreement with each other. The results show that LMC process can provide both dendritic refinement and superior performance for castings due to the increased cooling rate and thermal gradient.
机译:建立了定向凝固过程中动态热辐射和对流边界的数学模型,模拟了温度场。元胞自动机(CA)方法和KurzGiovanola-Trivedi(KGT)生长模型用于描述成核和生长。初级树突臂间距(PDAS)和次级树突臂间距(SDAS)分别由马-Sham(MS)和Furer-Wunderlin(FW)模型计算。基于温度场研究了高速凝固 (HRS) 和液态金属冷却 (LMC) 工艺的糊状区域形状。分别采用模拟和电子背散射衍射(EBSD)技术分析了微观结构的演变和晶体取向。PDAS和SDAS的仿真结果与实验结果的对比表明,两者之间有较好的一致性。结果表明,LMC工艺通过提高冷却速率和热梯度,为铸件提供了枝晶细化和优异的性能。

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