Measurement of residual stress in laser additive manufacturing TC4 titanium alloy with the laser ultrasonic technique

IF 6.1 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Yu Zhan , Chen Liu , Junjian Zhang , Guanzhong Mo , Changsheng Liu
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引用次数: 53

Abstract

Laser additive manufacturing (LAM) has wide prospects in the titanium alloy for aerospace applications because of its low consumption, high forming efficiency and digital manufacturing process. However, the problems of deformation and cracking caused by residual stress restrict its rapid development. In this paper, laser ultrasonic technology, as an advanced nondestructive testing method, is applied to measure residual stress in TC4 titanium alloy produced by LAM for the first time. The surface wave induced by pulse laser is applied to inverse the longitudinal and transverse residual stress. The result shows that the residual stress level in the LAM specimens belongs to low residual stress domain. The residual stress parallel to the direction of laser scanning is obviously greater than it perpendicular to the direction of laser scanning. Then, the effect of process parameters on residual stress is discussed. The residual stress is positively correlated with the laser power, and it is negatively correlated with the scanning speed and powder feeding rate. Finally, orthogonal experiment design and multiple linear regression analysis are used to establish empirical formula for residual stress evaluation of LAM titanium alloy parts.

激光超声技术测量激光增材制造TC4钛合金残余应力
激光增材制造以其低消耗、高成形效率和数字化制造工艺在航空航天钛合金中具有广阔的应用前景。然而,残余应力引起的变形和开裂问题制约了其快速发展。本文首次将激光超声技术作为一种先进的无损检测方法,应用于LAM生产的TC4钛合金的残余应力测量。利用脉冲激光诱导的表面波反演了纵向和横向残余应力。结果表明:LAM试样的残余应力水平属于低残余应力域;平行于激光扫描方向的残余应力明显大于垂直于激光扫描方向的残余应力。然后讨论了工艺参数对残余应力的影响。残余应力与激光功率呈正相关,与扫描速度和给粉速度呈负相关。最后,通过正交试验设计和多元线性回归分析,建立了LAM钛合金零件残余应力评价的经验公式。
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来源期刊
Materials Science and Engineering: A
Materials Science and Engineering: A 工程技术-材料科学:综合
CiteScore
11.50
自引率
15.60%
发文量
1811
审稿时长
31 days
期刊介绍: Materials Science and Engineering A provides an international medium for the publication of theoretical and experimental studies related to the load-bearing capacity of materials as influenced by their basic properties, processing history, microstructure and operating environment. Appropriate submissions to Materials Science and Engineering A should include scientific and/or engineering factors which affect the microstructure - strength relationships of materials and report the changes to mechanical behavior.
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