The crack propagation behaviors, microstructure and mechanical properties of T-welded joints for TIGW with crystal plasticity model and XFEM

IF 6.2 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of Materials Research and Technology-Jmr&t Pub Date : 2024-09-11 DOI:10.1016/j.jmrt.2024.09.057
Minghui Pan , Wentao Chen , Aolin Sun , Xiantong Li , Xiangfei Li , Wenhe Liao , Wencheng Tang
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Abstract

In view of the significant impact of welding defects on the fracture behaviors involving the strength, stress concentration and bearing capacity of welded joint, etc., the propagation behaviors and mechanical properties of welded joints with porosity and micro crack are deeply investigated using a multiscale method. In this work, a crack nucleation and propagation model based on crystal plasticity theory, combined with the extended finite element method (XFEM), is established for the T-welded joint. The maximum slip on the predominant slip system method is applied to predict the crack propagation path of pores and micro cracks in the weld zone (WZ), and the effect of crystal orientation on crack growth is explored. Then, a continuous model is used to analyze the micro and macro fracture behaviors near the weld under tensile load, combined with the maximum principal stress method. The WZ and heat affected zone (HAZ) are observed using electron backscatter diffraction (EBSD) to study the microstructure evolution. Considering grain boundaries, the image information of crystal morphology is processed through binary image analysis for FE modeling. The local mechanical properties testing is carried out using micro-specimens of HAZ and WZ to calibrate the crystal plastic parameters. The results show that the resolved shear stress of the predominant slip system of crack initiation and propagation elements is increased by pore and crack defects. The fracture positions of tensile specimens through numerical simulation are in good agreement with the macroscopic experimental results. It will provide an analysis basis for preventing fracture failure and improving the service performance of thin-walled structures in future.

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利用晶体塑性模型和 XFEM 分析 TIGW T 型焊接接头的裂纹扩展行为、微观结构和力学性能
鉴于焊接缺陷对涉及焊接接头强度、应力集中和承载能力等断裂行为的重大影响,采用多尺度方法深入研究了存在气孔和微裂纹的焊接接头的扩展行为和力学性能。本文以晶体塑性理论为基础,结合扩展有限元法(XFEM),建立了 T 型焊接接头的裂纹成核和扩展模型。应用主要滑移系统上的最大滑移法预测了焊接区(WZ)中孔隙和微裂纹的裂纹扩展路径,并探讨了晶体取向对裂纹生长的影响。然后,结合最大主应力法,使用连续模型分析拉伸载荷下焊缝附近的微观和宏观断裂行为。利用电子反向散射衍射 (EBSD) 观察了 WZ 和热影响区 (HAZ),以研究微观结构的演变。考虑到晶界,通过二元图像分析处理晶体形态的图像信息,以建立有限元模型。使用 HAZ 和 WZ 的微试样进行了局部力学性能测试,以校准晶体塑性参数。结果表明,孔隙和裂纹缺陷增加了裂纹萌发和扩展要素的主要滑移系统的分辨剪应力。数值模拟拉伸试样的断裂位置与宏观实验结果吻合。这将为今后防止薄壁结构断裂失效和提高其使用性能提供分析依据。
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来源期刊
Journal of Materials Research and Technology-Jmr&t
Journal of Materials Research and Technology-Jmr&t Materials Science-Metals and Alloys
CiteScore
8.80
自引率
9.40%
发文量
1877
审稿时长
35 days
期刊介绍: The Journal of Materials Research and Technology is a publication of ABM - Brazilian Metallurgical, Materials and Mining Association - and publishes four issues per year also with a free version online (www.jmrt.com.br). The journal provides an international medium for the publication of theoretical and experimental studies related to Metallurgy, Materials and Minerals research and technology. Appropriate submissions to the Journal of Materials Research and Technology should include scientific and/or engineering factors which affect processes and products in the Metallurgy, Materials and Mining areas.
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