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Effect of Prewelding Pretreatment on Welding Residual Stress of Titanium Alloy Thick Plate
其他题名焊前预处理对钛合金厚板焊接残余应力的影响
2024-08-11
发表期刊JINSHU XUEBAO/ACTA METALLURGICA SINICA
ISSN0412-1961
卷号60期号:8页码:1064-1078
发表状态已发表
DOI10.11900/0412.1961.2024.00054
摘要

Welding is an essential means of joining structural components to form a new structure. Welding residual stress mainly results from materials expanding or contracting due to temperature variations, which can reduce the life of titanium alloys. Therefore, to reduce undesired residual stress, the welding process and microstructure of the materials involved should be optimized. Titanium alloys play a crucial role in marine and aviation fields due to their excellent corrosion resistance and high specific strength. This work investigates the influence mechanism of the prewelding pretreatment process on the structure, mechanical properties, and residual stress of the electron beam welding joint of a titanium alloy thick plate. The macrostructure and microstructure of titanium alloy welding joints prepared using different pretreatment processes are characterized. Results showed that preheating before welding substantially widens the fusion zone (FZ) and heat-affected zone (HAZ) of the welding joint, coarsening α lamellae in both zones. Thus, the hardness of the FZ and HAZ of the preheated welding joint is reduced to close to that of the base metal. Simultaneously, the strength and toughness of the welding joint is considerably improved such that it is similar to the base metal. The neutron diffraction, deep-hole drilling, and Rostenthal-Norton contour methods are used to measure the residual stress of the electron beam welding joint. The neutron diffraction method exhibits high detection accuracy and can achieve stress monitoring in different zones of the weld seam. Deep-hole drilling is a mechanical strain relief technique for measuring transverse and longitudinal residual stress through component thickness. The Rostenthal-Norton contour method can obtain a three-dimensional stress on the welding joint. A combination of these three measurement techniques can complement and be used to verify each other, providing reasonable data for the residual stress evaluation. The detection results of unpreheated welding joints are compared and analyzed, and the residual stress distribution in the FZ and HAZ zones along different directions is obtained. The FZ is subjected to tensile residual stress along all three directions. Alternatively, the HAZ is subjected to compressive stress along the transverse and longitudinal directions and tensile stress along the normal direction. The residual stress at base metal is small. Additionally, the residual stress results obtained by the deep-hole drilling method for the welding joints using two preheating processes are compared. The results showed that preheating before welding can considerably reduce residual stress at the weld. The reason is discussed in depth. Numerical simulation is used to calculate the changes in the temperature and stress fields under different preheating temperatures. The dynamic change rules of thermal stress under different preheating temperatures are obtained. Results showed that increasing the preheating temperature reduces thermal stress and the thermal expansion mismatch in different areas of the welded joint. Moreover, the microstructure, element distribution, and grain orientation of the FZ and HAZ of joints welded using two pretreatment processes are analyzed. Preheating coarsens the α lamellae and promotes the redistribution of alloy elements, thereby reducing the stress concentration between α and β phases. Besides, variant selection of the HAZ is induced by the preheating process. The number and differences in the orientation of α variants are decreased, thereby reducing the stress concentration between variants. © 2024 Chinese Academy of Sciences. All rights reserved.

关键词Compressive stress Corrosion resistance Electron beam welding Electron beams Heat affected zone High strength alloys Microstructure Neutron diffraction Neutrons Seawater corrosion Stress relief Titanium alloys Base metals Deep hole drilling Fusion heat Fusion zones Heat-affected zones Preheating temperature Pretreatment process Titanium (alloys) Welding joints Welding residual stress
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收录类别EI ; SCI
语种中文
WOS研究方向Metallurgy & Metallurgical Engineering
WOS类目Metallurgy & Metallurgical Engineering
WOS记录号WOS:001281277300006
出版者Chinese Academy of Sciences
EI入藏号20243216803302
EI主题词Residual stresses
EI分类号471.4 Seawater, Tides and Waves ; 531.1 Metallurgy ; 538.2 Welding ; 538.2.1 Welding Processes ; 539.1 Metals Corrosion ; 542.3 Titanium and Alloys ; 951 Materials Science
原始文献类型Journal article (JA)
文献类型期刊论文
条目标识符https://kms.shanghaitech.edu.cn/handle/2MSLDSTB/411229
专题创意与艺术学院_PI研究组(P)_翟梓融组
通讯作者Ma, Yingjie
作者单位
1.School of Materials Science and Engineering, University of Science and Technology of China, Shenyang; 110016, China
2.Shi-changxu Innovation Center for Advanced Materials, Institute of Metal Research, Chinese Academy of Sciences, Shenyang; 110016, China
3.Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang; 110016, China
4.Center for Adaptive System Engineering, ShanghaiTech University, Shanghai; 201210, China
5.Spallation Neutron Source Science Center, Dongguan; 523803, China
6.Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing; 100190, China
推荐引用方式
GB/T 7714
Zhou, Mu,Wang, Qian,Wang, Yanxu,et al. Effect of Prewelding Pretreatment on Welding Residual Stress of Titanium Alloy Thick Plate[J]. JINSHU XUEBAO/ACTA METALLURGICA SINICA,2024,60(8):1064-1078.
APA Zhou, Mu.,Wang, Qian.,Wang, Yanxu.,Zhai, Zirong.,He, Lunhua.,...&Yang, Rui.(2024).Effect of Prewelding Pretreatment on Welding Residual Stress of Titanium Alloy Thick Plate.JINSHU XUEBAO/ACTA METALLURGICA SINICA,60(8),1064-1078.
MLA Zhou, Mu,et al."Effect of Prewelding Pretreatment on Welding Residual Stress of Titanium Alloy Thick Plate".JINSHU XUEBAO/ACTA METALLURGICA SINICA 60.8(2024):1064-1078.
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