材料科学
流体体积法
熔池
钨极气体保护焊
钛镍合金
表面张力
多物理
计算流体力学
焊接
机械工程
冶金
机械
复合材料
形状记忆合金
流量(数学)
电弧焊
结构工程
热力学
有限元法
工程类
物理
作者
Wenchao Ke,J.P. Oliveira,Baoqiang Cong,Sansan Ao,Zewu Qi,Bei Peng,Zhi Zeng
标识
DOI:10.1016/j.addma.2021.102513
摘要
Ultra high-frequency pulsed gas tungsten arc welding (UHFP-GTAW)-based Wire Arc Additive Manufacturing (WAAM) was used to fabricate thin walls of NiTi shape memory alloys. The transient heat and fluid flow are critical during fusion-based additive manufacturing, since they impact the as-built microstructure. In this work, a three-dimensional numerical model, which includes the force, surface Gauss heat source and periodic droplet transfer models, was developed to simulate the deposition of 5 layers. The gravity, buoyancy, electromagnetic, surface tension, arc pressure and arc shear stress are considered in the developed force model. An improved free surface tracing method using the volume of fluid (VOF) technique was proposed to more effectively track the free surface of the molten pool with the computational fluid dynamics (CFD) software FLUENT. The multiphysics phenomena associated to the process, namely the temperature and velocity fields of the molten pool, were studied. The model was then validated by experiments. It is revealed that the microstructure of the as-built parts is refined by the UHFP current power which induces significant vibration of the molten pool. These findings lay the foundations for optimizing the WAAM process aiming at fabricating high quality and complex NiTi parts.
科研通智能强力驱动
Strongly Powered by AbleSci AI