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Numerical and experimental investigation on thermal behavior and microstructure during selective laser melting of high strength steel

机译:高强度钢选择性激光熔化期间热能行为和微观结构的数值实验研究

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摘要

During selective laser melting (SLM) process, the correlation between thermal behavior and complex microstructure must be clarified. The present study investigates the effect of laser power and scan speed on thermal behavior and solidification structures of SLM-produced high strength tool steel. A three-dimensional finite element model was built to simulate the thermal behavior in SLM process. The simulation results show that correlativity exists between the process parameters (laser energy density) and the maximum temperature, cooling rate, temperature gradient and solidification rate. Scan speed has more significant impact on the cooling rate and solidification rate than laser power. The sub-grain patterns of the part presents predominantly cellular, elongated cellular and columnar structure. The formation of these sub-grain microstructures in the molten pool was controlled by the gradient cooling rate (from 5.6x10(5) to 3.4x10(6) degrees C/s) and temperature gradient (from 5.0 to 30 degrees C/mu m). The columnar structure are elongated with the increment of the temperature gradient. The grain size of the microstructure become finer with the increase of laser power or scan speed. And the gradient microstructure has a significant impact on its microhardness properties.
机译:在选择性激光熔化(SLM)过程中,必须澄清热行为和复杂微结构之间的相关性。本研究研究了激光功率和扫描速度对SLM制造的高强度工具钢的热行为和凝固结构的影响。建立了三维有限元模型以模拟SLM过程中的热行为。仿真结果表明,在工艺参数(激光能量密度)和最高温度,冷却速率,温度梯度和凝固率之间存在相关性。扫描速度对冷却速率的影响更大,凝固率比激光功率更大。该部件的亚粒模式主要呈现细胞,细长的细胞和柱状结构。熔池中的这些亚粒微观结构的形成由梯度冷却速率(从5.6×10(5)至3.4×10(6)℃/ s)和温度梯度(从5.0至30摄氏度(5)/毫米)控制)。柱状结构随温度梯度的增量而伸长。随着激光功率或扫描速度的增加,微观结构的晶粒尺寸变得更细。梯度微观结构对其显微硬度特性产生显着影响。

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