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激光增材制造过程中循环热输入对组织和性能的影响

  • 王迪 ,
  • 黄锦辉 ,
  • 谭超林 ,
  • 杨永强
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  • 1.华南理工大学 机械与汽车工程学院 广州 510640
    2.Singapore Institute of Manufacturing Technology, A*STAR, 637662, Singapore
王 迪,男,1986年生,教授,博士

收稿日期: 2021-07-29

  修回日期: 2021-09-16

  网络出版日期: 2022-01-26

基金资助

国家自然科学基金项目(52005189);国家重点研发计划项目(2021YFE0203500);广东省基础与应用基础研究项目(2019A1515110542);广东省基础与应用基础研究项目(2022B1515020064)

Review on Effects of Cyclic Thermal Input on Microstructure and Property of Materials in Laser Additive Manufacturing

  • Di WANG ,
  • Jinhui HUANG ,
  • Chaolin TAN ,
  • Yongqiang YANG
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  • 1.School of Mechanical and Automotive Engineering, South China University of Technology, Guangzhou 510640, China
    2.Singapore Institute of Manufacturing Technology, A*STAR, 637662, Singapore
TAN Chaolin, associate professor, Tel: (020)87114484, E-mail: tclscut@163.com

Received date: 2021-07-29

  Revised date: 2021-09-16

  Online published: 2022-01-26

Supported by

National Natural Science Foundation of China(52005189);National Key Research and Development Progrom of China(2021YFE0203500);Guangdong Province Basic and Applied Basic Research Fund Project(2019A1515110542);Guangdong Province Basic and Applied Basic Research Fund Project(2022B1515020064)

摘要

激光增材制造(LAM)中逐层沉积形成独特的循环热输入,能对沉积材料产生原位热处理(IHT)效应,具有调整微观结构和提高材料力学性能的潜力。本文针对LAM中循环热输入现象进行了详细阐述,分析了工艺参数、沉积方向、层间延时、基板预热、激光重熔等对循环热输入的影响行为。不同的循环热输入能对晶粒取向、相组成、第二相析出等微观组织产生明显的影响,进而影响其力学性能。循环热输入产生的IHT效应,为改善材料性能和研发新材料提供了契机。因此本文提出了理解和建立成分-工艺-IHT效应-组织结构-力学性能之间关系的理论,进而为基于IHT效应的LAM专用新材料的研究和发展提供启示。

本文引用格式

王迪 , 黄锦辉 , 谭超林 , 杨永强 . 激光增材制造过程中循环热输入对组织和性能的影响[J]. 金属学报, 2022 , 58(10) : 1221 -1235 . DOI: 10.11900/0412.1961.2021.00310

Abstract

The unique cyclic thermal input in laser additive manufacturing (LAM) induced by layerwise deposition manner has been one of the hot research topics. This technique has shed light on the potential of using intrinsic heat treatment (IHT) to tune microstructures and enhance the mechanical performance of materials. Therefore, this article elaborates on cyclic thermal input in LAM. Herein, the influence of process parameters, deposition direction, interlayer delay time, substrate preheating, and laser remelting on cyclic thermal input was reviewed in detail. One of our key findings was that the cyclic thermal input can significantly affect the microstructures such as grain orientation, phase composition, and second phase precipitation, which in turn affects the mechanical properties of materials. The IHT effect generated by cyclic thermal input provides an opportunity for material performance enhancement and new materials development. Hence, the understanding of internal relationships among composition-process-IHT effect-microstructures-mechanical properties is critical. This is not only essential for material performance enhancement through tailoring of IHT effect but also provides enlightenment for the research and development of LAM-specific new materials based on IHT effect.

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