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FENG Yulan, WU Zhisheng, SUN Zhiyu. Numerical simulation of the influence of thickness of cladding material on stress and strain of welded joint of stainless steel composite plate[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2024, 45(1): 73-82. DOI: 10.12073/j.hjxb.20230606001
Citation: FENG Yulan, WU Zhisheng, SUN Zhiyu. Numerical simulation of the influence of thickness of cladding material on stress and strain of welded joint of stainless steel composite plate[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2024, 45(1): 73-82. DOI: 10.12073/j.hjxb.20230606001

Numerical simulation of the influence of thickness of cladding material on stress and strain of welded joint of stainless steel composite plate

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  • Received Date: June 05, 2023
  • Available Online: November 12, 2023
  • GTAW technology has been used to fabricate welded connections on composite plates consisting of 304 and Q355 materials. Base material thickness was 13 mm, while cladding material thicknesses ranged from 0.3 mm to 2.0 mm. The influence of different thicknesses of cladding material on the stress and strain of 304/Q355 composite plate welded joint was analyzed by numerical simulation method, and the evolution characteristics of residual stress and strain during welding of stainless steel composite plate with different thicknesses of cladding material were revealed. The results show that the X-ray diffraction test results are in good agreement with the numerical simulation results. With the increase of the thickness of the cladding material, the maximum residual stress value of the welded joint section of 304/Q355 composite plate gradually decreases, and the width of the residual stress zone gradually increases. During the welding process from the base weld to the transition weld, the stress concentration zone gradually shrinks to the transition weld zone. Finally, the highest stress concentration area is located in the weld zone of the transition layer, and the maximum stress value is close to the yield strength of the material. In addition, the deformation after welding increases with the increase of the thickness of the cladding material, and the deformation of the composite plate with the thickness of the cladding material 2.0 mm is about 2 mm higher than that of the composite plate with the thickness of the cladding material 0.3 mm, and the direction of the largest deformation is the direction of the weld thickness.

  • [1]
    张婷, 许浩, 李仲杰. 层状金属复合材料的发展历程及现状[J]. 工程科学报, 2021, 43(1): 67 − 75.

    Zhang Ting, Xu Hao, Li Zhongjie. Development and current situation of layered metal composites[J]. Journal of Engineering Science, 2021, 43(1): 67 − 75.
    [2]
    刘晓涛, 张延安, 崔建忠. 层状金属复合材料生产工艺及其新进展[J]. 材料导报, 2002(7): 41 − 43.

    Liu Xiaotao, Zhang Yanan, Cui Jianzhong. Production technology and new progress of layered metal composites[J]. Materials Reviews, 2002(7): 41 − 43.
    [3]
    Zhu Min, Wu Wei, Qian Weifang, et al. A brief review on welding of stainless steel clad plates: issues and future perspectives[J]. The International Journal of Advanced Manufacturing Technology, 2021, 110(1−2): 49 − 59.
    [4]
    班慧勇, 梅镱潇, 石永久. 不锈钢复合钢材钢结构研究进展[J]. 工程力学, 2021, 38(6): 1 − 23.

    Ban Huiyong, Mei Yixiao, Shi Yongjiu. Research progress of stainless steel composite steel structure[J]. Engineering Mechanics, 2021, 38(6): 1 − 23.
    [5]
    Gan Shiming, Liu Huaying, Zhai Zhiping, et al. A review of welding residual stress test methods[J]. China Welding, 2022, 31(2): 45 − 55.
    [6]
    叶丰, 彭星煜, 张丽江, 等. Incoloy 825/L360QS双金属复合管焊接残余应力的数值模拟[J]. 焊接, 2023(9): 48 − 53.

    Ye Feng, Peng Xingyu, Zhang Lijiang, et al. Numerical simulation of welding residual stress in Incoloy 825/L360QS bimetallic composite pipe[J]. Welding& Joining, 2023(9): 48 − 53.
    [7]
    王莅. 304/Q345R 复合板焊接接头残余应力数值分析[D]. 太原: 太原科技大学, 2020.

    Wang Li. Numerical analysis of residual stress of welded joint of 304/Q345R composite plate[D]. Taiyuan: Taiyuan University of Science and Technology, 2020.
    [8]
    Han Tao, Gu Shiwei, Xu Liang, et al. Study on stress and deformation of keyhole gas tungsten arc-welded joints [J]. China Welding, 2020, 29(1): 17-25.
    [9]
    袁嘉欣, 邵飞, 白林越, 等. 基于试验和数值模拟的TC1/1060/6061爆炸焊接复合板界面分析[J]. 焊接学报, 2023, 44(9): 81 − 87.

    Yuan Jiaxin, Shao Fei, Bai Linyue, et al. Interface analysis of TC1/1060/6061 explosive welded composite plate based on test and numerical simulation[J]. Transactions of the China Welding Institution, 2023, 44(9): 81 − 87.
    [10]
    王铭. C276/A36 复合板激光焊接工艺及接头组织性能研究[D]. 镇江: 江苏科技大学, 2022.

    Wang Ming. Study on laser welding process and joint microstructure properties of C276/A36 composite plate [D]. Zhenjiang: Jiangsu University of Science and Technology, 2022.
    [11]
    Suo Li, Jian Li, Guangai Sun, et al. Modeling of welding residual stress in a dissimilar metal butt-welded joint between P92 ferritic steel and SUS304 austenitic stainless steel[J]. Journal of Materials Research and Technology, 2023, 23: 4938 − 4954. doi: 10.1016/j.jmrt.2023.02.123
    [12]
    Luo Wenze, Hu Long, Deng Dean. Numerical simulation and development of efficient calculation method for residual stress of SUS316 saddle tube-pipe joint[J]. Acta Metallurgica Sinica, 2022, 58(10): 1334 − 1348.
    [13]
    Deng Dean, Kyoshima Shoichi. Influence of annealing temperature on calculation accuracy of welding residual stress in a SUS304 stainless steel joint[J]. Acta Metallurgica Sinica, 2014, 50(5): 626 − 632.
    [14]
    周壮壮, 陈放. 基于刻槽结构的复合杆爆炸焊接数值模拟[J]. 焊接学报, 2023, 44(8): 41 − 48. doi: 10.12073/j.hjxb.20220930001

    Zhou Zhuangzhuang, Chen Fang. Numerical simulation of explosive welding of composite rod based on notched structure[J]. Transactions of the China Welding Institution, 2023, 44(8): 41 − 48. doi: 10.12073/j.hjxb.20220930001
    [15]
    Wen Lianglu, Jing Longsun, Han Su, et al. Research on residual stress field and damage distribution for thick plate welded joints[J]. Hunan Daxue Xuebao/Journal of Hunan University Natural Sciences, 2014, 41(11): 24 − 31.
    [16]
    Mehran Ghafouri, Antti Ahola, Joseph Ahn, et al. Numerical and experimental inrestigations on the melding residual streoses and distortions of the short fillet melds in hish strength steel plates [J]. Engineering structwes, 2022, 260: 114269.
    [17]
    An Gyubaek, Park Jeongung, Lim Woontaek, et al. Characteristics of welding residual stress distribution in dissimilar weld joints[J]. Metals, 2022, 12(3): 405. doi: 10.3390/met12030405
    [18]
    朱敏, 郑乔, 吴巍, 等. 坡口形式对双金属复合板多层多道焊接头残余应力演变的影响[J]. 机械工程学报, 2019, 58(10): 51 − 58.

    Zhu Min, Zheng Qiao, Wu Wei, et al. Influence of groove form on the evolution of residual stress in multi-pass welded joint of bimetal composite plate[J]. Journal of Mechanical Engineering, 2019, 58(10): 51 − 58.
    [19]
    周广涛, 胡庆睿, 刘彪, 等. 随焊高速气流场辅助高强铝合金薄板焊接应力演变及控制变形机理[J]. 焊接学报, 2023, 44(2): 32 − 39.

    Zhou Guangtao, Hu Qingrui, Liu Biao, et al. Welding stress evolution and deformation control mechanism of high strength aluminum alloy sheet assisted by welding high speed gas field[J]. Transactions of the China Welding Institution, 2023, 44(2): 32 − 39.
    [20]
    贾登峰. 304/Q345R过渡层焊缝对温度场和应力场影响的数值模拟研究[D]. 太原: 太原科技大学, 2018.

    Jia Dengfeng. Numerical simulation of effect of 304/Q345R transition layer weld on temperature field and stress field [D]. Taiyuan: Taiyuan University of Science and Technology, 2018.
    [21]
    Wei Yinhua, Dong Zhibin, Liu Bin, et al. Stress distributions of welding joints in titanium-steel composite pressure vessel under working conditions[J]. Sicence and Technology of Welding and Joining, 2011, 16(8): 709 − 716.
    [22]
    Hu Xiaodong, Yang Yicheng, Song Ming. Experimental and numerical investigations on the thermomechanical behavior of 304 stainless steel/Q345R composite plate weld joint[J]. Materials, 2019, 12: 3489.
    [23]
    彭刚勇. 激光选区熔化成形钛合金温度场和应力场数值模拟[D]. 武汉: 华中科技大学, 2018.

    Peng Gangyong. Numerical simulation of temperature field and stress field of laser selective melting forming titanium alloy [D]. Wuhan: Huazhong University of Science and Technology, 2018.
    [24]
    Jiang Wenchang, Wang Binying, Gong Jianming, et al. Finite element analysis of the effect of welding heat input and layer number on residual stress in repair welds for a stainless steel clad plate[J]. Materials & Design, 2011, 32(5): 2851 − 2857.

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