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A Combined Experimental-Numerical Method to Evaluate Powder Thermal Properties in Laser Powder Bed Fusion

机译:一种综合实验 - 评价激光粉床粉末热性能的综合实验 - 数值方法

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摘要

Powder bed metal additive manufacturing (AM) utilizes a high-energy heat source scanning at the surface of a powder layer in a predefined area to be melted and solidified to fabricate parts layer by layer. It is known that powder bed metal AM is primarily a thermal process, and further, heat conduction is the dominant heat transfer mode in the process. Hence, understanding the powder bed thermal conductivity is crucial to process temperature predictions, because powder thermal conductivity could be substantially different from its solid counterpart. On the other hand, measuring the powder thermal conductivity is a challenging task. The objective of this study is to investigate the powder thermal conductivity using a method that combines a thermal diffusivity measurement technique and a numerical heat transfer model. In the experimental aspect, disk-shaped samples, with powder inside, made by a laser powder bed fusion (LPBF) system, are measured using a laser flash system to obtain the thermal diffusivity and the normalized temperature history during testing. In parallel, a finite element (FE) model is developed to simulate the transient heat transfer of the laser flash process. The numerical model was first validated using reference material testing. Then, the model is extended to incorporate powder enclosed in an LPBF sample with thermal properties to be determined using an inverse method to approximate the simulation results to the thermal data from the experiments. In order to include the powder particles' contribution in the measurement, an improved model geometry, which improves the contact condition between powder particles and the sample solid shell, has been tested. A multipoint optimization inverse heat transfer method is used to calculate the powder thermal conductivity. From this study, the thermal conductivity of a nickel alloy 625 powder in powder bed conditions is estimated to be 1.01 W/m K at 500 degrees C.
机译:粉床金属添加剂制造(AM)在预定区域的粉末层的表面上利用高能热源扫描,以熔化和固化以通过层制造零件层。众所周知,粉末床金属AM主要是热过程,进一步,热传导是该过程中的主要传热模式。因此,理解粉末床导热率至关重要,以处理温度预测,因为粉末导热率可能与其固体对应物基本不同。另一方面,测量粉末导热率是一个具有挑战性的任务。本研究的目的是使用结合热漫射测量技术和数值传热模型的方法来研究粉末导热率。在实验方面,使用激光闪光系统通过激光粉末融合(LPBF)系统制成的粉末状样品用激光粉末融合(LPBF)系统进行测量,以获得测试期间的热扩散性和归一化的温度历史。并行地,开发了有限元(FE)模型来模拟激光闪光过程的瞬态传热。首先使用参考材料测试验证数值模型。然后,将模型扩展以将封装在LPBF样品中的粉末掺入具有热性质,以使用逆方法确定近似模拟结果与实验的热数据。为了在测量中包括粉末颗粒的贡献,已经测试了改善粉末颗粒和样品固体壳之间的接触状态的改进的模型几何形状。多点优化逆传热方法用于计算粉末导热率。根据该研究,粉末床条件下镍合金625粉末的导热率估计为500℃的1.01W / m k。

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