Advanced Search
ZHANG Zhaodong, ZENG Qingwen, LIU Liming, SUN Chengshuai. Forming regularity of aluminum alloy formed by laser induced MIG arc additive manufacturing[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2019, 40(8): 7-12. DOI: 10.12073/j.hjxb.2019400201
Citation: ZHANG Zhaodong, ZENG Qingwen, LIU Liming, SUN Chengshuai. Forming regularity of aluminum alloy formed by laser induced MIG arc additive manufacturing[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2019, 40(8): 7-12. DOI: 10.12073/j.hjxb.2019400201

Forming regularity of aluminum alloy formed by laser induced MIG arc additive manufacturing

More Information
  • Received Date: July 24, 2018
  • In order to research the influence of various parameters on the forming dimension of thin-walled structural parts in the process of laser induced MIG arc additive manufacturing of aluminum alloys, this paper used the quadratic general rotation combination method to design orthogonal test samples, and established the process parameters (arc current I, stacking velocity v, interlayer temperature T, laser power P) and the size prediction model of the stable area of the thin-walled wall through quadratic regression equations. And the influences of individual process parameters on the forming of the test piece were studied. It was found that the model prediction effect was good. When the arc current exceeded 106 A, the order of influence of parameters on the layer width from large to small were arc current, interlayer temperature, stacking speed, and laser power. The order of influence of parameters on layer height from large to small were arc current, stacking speed, interlayer temperature, laser power.
  • 关桥.焊接/连接与增材制造(3D打印)[J].焊接, 2014(5):1-8 Guan Qiao. Welding/connection and additive manufac-turing (3D printing[J]. Welding&Joining, 2014(5):1-8
    Liu Y B, Sun Q J, Sang H B, et al. Microstructure and mechanical properties of additive manufactured steel-Al structure materials with nickel gradient layers[J]. China Welding, 2016, 25(01):8-14.
    王立伟,陈树君,肖珺,等.熔滴主动靶向的激光间接电弧复合增材制造技术初探[J].焊接学报, 2017, 38(3):71-74 Wang Liwei, Chen Shujun, Xiao Jun, et al. Droplet-targeting laser hybrid indirect arc for additive manu-facturing technology-A preliminary study[J]. Transactions of the China Welding Institution, 2017, 38(3):71-74
    柏久阳,王计辉,林三宝,等.铝合金电弧增材制造焊道宽度尺寸预测[J].焊接学报, 2015, 36(9):87-90 Bai Jiuyang, Wang Jihui, Lin Sanbao, et al. Droplet-targeting laser hybrid indirect arc for additive manufacturing technology-A preliminary study[J]. Transactions of the China Welding Institution, 2015, 36(9):87-90
    张瑞.基于CMT的铝合金电弧增材制造(3D打印)技术及工艺研究[D].南京:南京理工大学, 2016.
    孙清洁,桑海波,刘一搏,等.基于电弧增材制造的截面扫描轨迹规划[J].焊接学报, 2017, 38(10):21-24 Sun Qingjie, Sang Haibo, Liu Yibo, et al. Research on deposited layer scaning trace skanning based on rapid-prototpying using CMT technology[J]. Transactions of the China Welding Institution, 2017, 38(10):21-24
    高福洋,赵文光,高奇,等.电弧增材制造成形工艺影响因素研究[J].材料开发与应用, 2017, 32(2):59-63 Gao Fuxiang, Zhao Wenguang, Gao Qi, et al. Study on influencing factors of arc additive manufacturing process[J]. Development and Application of Materials, 2017, 32(2):59-63
    Zhang Z D, Sun C S, Xu X K, et al. Surface quality and forming characteristics of thin-wall aluminium alloy parts manufactured by laser assisted MIG arc additive manufacturing[J]. International Journal of Lightweight Materials and Manufacture, 2018, 1(2):89-95.
    Huang R S, Liu L M, Zhang F. Influence of laser in low power YAG laser-MAG hybrid welding processs[J]. Chinese Optics Letter, 2008(1):47-50.
    袁志发,周静芋.试验设计分析[M].北京:高等教育出版社, 2000.
  • Related Articles

    [1]QIAO Ruilin, LONG Weimin, QIN Jian, LIAO Zhiqian, FAN Xigang, WEI Yongqiang. Numerical simulation of residual stress in YG8/GH4169 dissimilar material brazed joints[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2024, 45(3): 68-74. DOI: 10.12073/j.hjxb.20230520001
    [2]WEI Xing, LIU Maokun, XIAO Lin, ZHAO Junming. Numerical simulations of 3D residual stresses on inclined cruciform welded joints[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2019, 40(5): 48-53,78. DOI: 10.12073/j.hjxb.2019400126
    [3]HUANG Bensheng, CHEN Quan, YANG Jiang, LIU Ge, YI Hongyu. Numerical simulation of welding residual stress and distortion in Q345/316L dissimilar steel[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2019, 40(2): 138-144. DOI: 10.12073/j.hjxb.2019400057
    [4]GONG Qingtao<sup>1</sup>, HU Guangxu<sup>2</sup>, MIAO Yugang<sup>1</sup>, MENG Mei<sup>1</sup>, ZHENG Hong<sup>3</sup>. Numerical analysis of multi-pass welding residual stresses based on processes chain simulation[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2018, 39(7): 12-16. DOI: 10.12073/j.hjxb.2018390166
    [5]DU Baoshuai, MA Xuezhou, ZHANG Zhongwen, XU Guoxiang. Numerical simulation of residual stress in multipass weld joint of ultrafine-grained Q460 steel[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2014, 35(2): 42-46.
    [6]CHI Luxin, MA Yonglin. Analysis of residual stresses on large-scale wall pipe circular weld of SA508-3 steel for nuclear power[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2013, (8): 85-88.
    [7]LI Yajuan, LI Wushen. Numerical simulation on welding residual stresses of X80 pipeline girth weld joint[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2010, (6): 97-100,104.
    [8]ZHOU Guangtao, LIU Xuesong, YANG Jianguo, YAN Dejun, FANG Hongyuan. Numerical simulation of welding residual stress for longitudinal straight weld seam for aluminum alloy thin-wall cylinder[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2008, (6): 89-92.
    [9]CHEN Fu-rong, XIE Rui-jun, ZHANG Ke-rong, LIU Fang-jun, MAO Zhi-yong. Effect of simulated welding parametery on residual stress of vacuum electron beam welding[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2006, (2): 55-58.
    [10]JIN Xiao-jun, HUO Li-xing, ZHANG Yu-feng, BAI Bing-ren, Li Xiao-wei, Cao Jun. Three dimensional finite element numerical simulation of residual stresses of all-position welding in duplex stainless steel pipe[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2004, (2): 52-56.

Catalog

    Article views (590) PDF downloads (87) Cited by()

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return