[1] 李涤尘,贺健康,田小永,等. 增材制造:实现宏微结构一体化制造[J]. 机械工程学报,2013,49(6):129-135. LI Dichen,HE Jiankang,TIAN Xiaoyong,et al. Additive manufacturing:Integrated fabrication of macro/microstructures[J]. Journal of Mechanical Engineering,2013,49(6):129-135. [2] 杨东青,王小伟,黄勇,等. 熔化极电弧增材制造18Ni马氏体钢组织和性能[J]. 焊接学报,2020,41(8):6-9,21,97. YANG Dongqing,WANG Xiaowei,HUANG Yong,et al. Microstructure and mechanical properties of 18 Ni ma-raging steel deposited by gas metal arc additive manufacturing[J]. Transactions of the China Welding Institution,2020,41(8):6-9,21,97. [3] 刘勇,任香会,常云龙,等. 金属增材制造技术的研究现状[J]. 热加工工艺,2018,47(19):15-19. LIU Yong,REN Xianghui,CHANG Yunlong,et al. Research status of metal additive manufacturing technology[J]. Hot-Working Process,2018,47(19):15-19. [4] 熊江涛,耿海滨,林鑫,等. 电弧增材制造研究现状及在航空制造中应用前景[J]. 航空制造技术,2015,494(Z2):80-85. XIONG Jiangtao,GEN Haibin,LIN Xin,et al. Research status of wire and arc additive manufacture and its application in aeronautical manufacturing[J]. Aeronautical Manufacturing Technology,2015,494(Z2):80-85. [5] 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. ZHANG Rui. Research on the aluminum alloy arc additive manufacturing (3D printing) technology and process based on the CMT[D]. Nanjing:Nanjing University Science & Technology,2016. [6] 郝轩,黄永德,陈伟,等. 基于CMT技术的铝合金电弧增材制造研究现状[J]. 精密成形工程,2018,10(5):88-94. HAO Xuan,HUANG Yongde,CHEN Wei,et al. Research status of the aluminum alloy arc additive manufacturing technology based on the CMT[J]. Journal of Netshape Forming Engineering,2018,10(5):88-94. [7] 从保强,欧阳瑞洁,齐铂金,等. CMT工艺及其热输入对Al-Cu合金焊缝成形和气孔的影响[J]. 稀有金属材料与工程,2016,45(3):606-611. CONG Baoqiang,OUYANG Ruijie,QI Bojin,et al. Influence of cold metal transfer process and its heat input on weld bead geometry and porosity of aluminum-copper alloy welds[J]. Rare Metal Materials and Engineering,2016,45(3):606-611. [8] 聂云鹏,张培磊,庄乔乔,等. 4043铝合金冷金属过渡薄壁构件电弧快速成形[J]. 焊接学报,2018(11):58-62,131. NIE Yunpeng,ZHANG Peilei,ZHUANG Qiaoqiao,et al. 4043 aluminum alloy thin-walled parts arc rapid prototyping with cold metal transfer[J]. Transactions of the China Welding Institution,2018(11):58-62,131. [9] ARTURO-GOMEZ O,LUIS-CORNOA G,MEHDI S,et al. Characterization of 4043 aluminum alloy deposits obtained by wire and arc additive manufacturing using a cold metal transfer process[J]. Science and Technology of Welding and Joining,2019,24(6):538-547. [10] 周佳芬,赵慧慧,李送斌,等. CMT增材制造工艺对5356铝合金熔敷层组织及力学性能的影响[J]. 上海航天,2020,37(3):103-106,114. ZHOU Jiafen,ZHAO Huihui,LI Songbin,et al. Effects of CMT additive manufacturing process on microstructure and mechanical properties of 5356 aluminum alloy cladding layer[J]. Aerospace Shanghai,2020,37(3):103-106,114. [11] CONG Baoqiang,DING Jialuo,STEWART W. Effect of arc mode in cold metal transfer process on porosity of additively manufactured Al-6.3%Cu alloy[J]. The International Journal of Advanced Manufacturing Technology,2015,76(9):1593-1606. [12] 李春凤,肖笑,尹玉祥,等. TIG电弧增材熔池行为的数值模拟研究现状[J]. 材料热处理学报,2020,41(7):25-32. LI Chunfeng,XIAO Xiao,YIN Yuxiang,et al. Research status of numerical simulation of TIG arc additive molten pool behavior[J]. Transactions of Materials and Heat Treatment,2020,41(7):25-32. [13] BAI Xingwang,COLEGROVE P,DING Jialuo,et al. Numerical analysis of heat transfer and fluid flow in multilayer deposition of PAW-based wire and arc additive manufacturing[J]. International Journal of Heat and Mass Transfer,2018,124:504-516. [14] CADIOUS S,COURTOIS M,CARIN M,et al. Heat transfer,fluid flow and electromagnetic model of droplets generation and melt pool behavior for wire arc additive manufacturing[J]. International Journal of Heat and Mass Transfer,2019,148:119102. [15] TSAI N S,EAGAR T W. Distribution of the heat and current fluxes in gas tungsten arcs[J]. Metallurgical Transactions B,1985,16(4):841-846. [16] KENNETH C. Recommended values of thermophysical properties for selected commercial alloys[M] Sawston Cambridge:Woodhead Publishing Limited,2002. [17] ZEMACH C. A continuum method for modeling surface tension[J]. Journal of Computational Physics,1992(2):335-354. [18] 高如超. 脉冲GTAW和CMT焊接过程传热、传质现象的数值模拟[D]. 长沙:中南大学,2013. GAO Ruchao. Numerical simulation of heat and mass transfer during pulsed GTAW and CMT welding processes[D]. Changsha:Central South University,2013. [19] FENG J,ZHANG H,HE P. The CMT short-circuiting metal transfer process and its use in thin aluminum sheets welding[J]. Materials & Design,2009,30(5):1850-1852. |