论文标题

表征激光粉末床融合过程的无量纲数字的数值研究

A numerical investigation of dimensionless numbers characterizing meltpool morphology of the laser powder bed fusion process

论文作者

Bhagat, Kunal, Rudraraju, Shiva

论文摘要

金属添加剂制造(AM)中的微观结构演变是一个复杂的多物理和多尺度问题。了解AM过程条件对微观结构演化的影响以及印刷部分的最终机械性能是一个积极的研究领域。在Meltpool量表上,在文献中已经对热流体控制方程式进行了广泛的建模,以了解其附近的Meltpool条件和热梯度。在许多受部分微分方程控制的现象中,重要的无量纲数字的维度分析和识别可以为过程动力学提供重要的见解。在这种情况下,在这项工作中介绍了一种使用尺寸分析的新型策略和线性最小二乘回归的方法来研究激光粉末床融合AM过程的热流体控制方程。首先,使用有限元方法解决了管理方程,并通过与实验估计的冷却速率以及文献的数值结果进行比较来验证模型预测。然后,通过尺寸分析,确定了一个重要的无量纲数量 - 被解释为被粉末状材料和熔体吸收的热量的量度。这种无量纲的热量量度以及诸如Peclet,Marangoni和Stefan数字等经典无量纲的量,用于研究Meltpool中不同合金中的对流运输。此外,该框架用于研究热梯度的变化和固化冷却速率。将Meltpool形态和微观结构演化与经典无量纲数字相关的变量联系起来的重要相关性是这项工作的关键贡献。

Microstructure evolution in metal additive manufacturing (AM) is a complex multi-physics and multi-scale problem. Understanding the impact of AM process conditions on the microstructure evolution and the resulting mechanical properties of the printed part is an active area of research. At the meltpool scale, the thermo-fluidic governing equations have been extensively modeled in the literature to understand the meltpool conditions and the thermal gradients in its vicinity. In many phenomena governed by partial differential equations, dimensional analysis and identification of important dimensionless numbers can provide significant insights into the process dynamics. In this context, a novel strategy using dimensional analysis and the method of linear least squares regression to numerically investigate the thermo-fluidic governing equations of the Laser Powder Bed Fusion AM process is presented in this work. First, the governing equations are solved using the Finite Element Method, and the model predictions are validated by comparing with experimentally estimated cooling rates, and with numerical results from the literature. Then, through dimensional analysis, an important dimensionless quantity - interpreted as a measure of heat absorbed by the powdered material and the meltpool, is identified. This dimensionless measure of heat absorbed, along with classical dimensionless quantities such as Peclet, Marangoni, and Stefan numbers, is used to investigate advective transport in the meltpool for different alloys. Further, the framework is used to study the variations of thermal gradients and the solidification cooling rate. Important correlations linking meltpool morphology and microstructure evolution related variables with classical dimensionless numbers are the key contribution of this work.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源