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激光定向能量沉积与喷丸强化成形Fe-Cr-Ni-B-Si合金混合增材制造的数值模拟设计

Numerical Modeling Design for the Hybrid Additive Manufacturing of Laser Directed Energy Deposition and Shot Peening Forming Fe-Cr-Ni-B-Si Alloy.

作者信息

Zhang Xiaoyu, Li Dichen, Zhu Weijun

机构信息

State Key Laboratory of Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an 710049, China.

School of Mechanical Engineering & Automation, Beijing University of Aeronautics & Astronautics, Beijing 100191, China.

出版信息

Materials (Basel). 2020 Oct 30;13(21):4877. doi: 10.3390/ma13214877.

Abstract

Hybrid additive manufacturing is of great significance to make up for the deficiency of the metal forming process; it has been one of the main trends of additive manufacturing in recent years. The hybrid process of laser directed energy deposition (laser DED) and shot peening is a new technology combining the principles of surface strengthening and additive manufacturing, whose difficulty is to reduce the interaction between the two processes. In this paper, a new model with a discrete phase and fluid-solid interaction method is established, and the location of the shot peening point in the hybrid process is optimized. The distributions of the temperature field and powder trajectory were researched and experiments were carried out with the optimized parameters to verify simulation results. It was found that the temperature field and the powder trajectory partly change, and the optimized injection point is located in the stress relaxation zone of the material. The densities and surface residual stresses of samples were improved, and the density increased by 8.83%. The surface stress changed from tensile stress to compressive stress, and the introduced compressive stress by shot peening was 2.26 times the tensile stress produced by laser directed energy deposition.

摘要

混合增材制造对于弥补金属成型工艺的不足具有重要意义;它已成为近年来增材制造的主要趋势之一。激光定向能量沉积(激光DED)与喷丸强化的混合工艺是一种将表面强化原理与增材制造相结合的新技术,其难点在于减少这两个工艺之间的相互作用。本文建立了一种具有离散相和流固相互作用方法的新模型,并对混合工艺中喷丸强化点的位置进行了优化。研究了温度场和粉末轨迹的分布,并采用优化后的参数进行实验以验证模拟结果。结果发现,温度场和粉末轨迹部分发生了变化,优化后的喷射点位于材料的应力松弛区。样品的密度和表面残余应力得到了改善,密度提高了8.83%。表面应力从拉应力转变为压应力,喷丸强化引入的压应力是激光定向能量沉积产生的拉应力的2.26倍。

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