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《材料导报》期刊社  2017, Vol. 31 Issue (24): 145-149    https://doi.org/10.11896/j.issn.1005-023X.2017.024.029
  材料研究 |
铝合金厚板搅拌摩擦焊焊缝局部金属的塑性流动特征
毛育青,柯黎明,陈玉华,刘奋成
南昌航空大学轻合金加工科学与技术国防重点学科实验室,南昌 330063
Plastic Flow Characteristic of Local Material in the Friction Stir Weld Seam of Aluminum Alloy Thick Plates
MAO Yuqing, KE Liming, CHEN Yuhua, LIU Fencheng
National Defence Key Discipline Laboratory of Light Alloy Processing Science and Technology, Nanchang Hangkong University, Nanchang 330063
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摘要 以0.02 mm厚铜箔为标示材料,采用带三角平面圆锥形搅拌针对20 mm厚7075-T6铝板进行焊接。通过测试沿焊缝厚度方向上温度场分布及观察标示材料分布状态,分析焊缝局部金属塑性流动行为特征。结果表明,沿焊缝厚度方向上自上而下的金属温度逐渐降低;焊缝上、下表面温度差约为90 ℃;同一厚度上相对称的两点,位于前进边金属的温度高于返回边约15 ℃。位于焊核区上部的铜箔呈细小颗粒状均匀分布;下部铜箔则呈层片状分布,且向前进边偏移。焊核区由多个呈纹路状、有序排列的洋葱环结构相互层叠而成,这与焊缝塑化金属沿轴向迁移方式发生变化有关。
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毛育青
柯黎明
陈玉华
刘奋成
关键词:  铝合金厚板  搅拌摩擦焊  温度分布  局部金属  塑性流动    
Abstract: 0.02 mm thick Cu foil was used as tracer material when 7075-T6 aluminum alloy thick plates with a thickness of 20 mm were friction stir welded using the tool with a triangle plane tapered pin. The vertical temperature distribution was measured and the distribution of tracer material in the weld seam was observed, and the plastic flow characteristic of the local material was analyzed. The results show that the peak temperature decreases gradually along the vertically downward direction of the weld seam, and the temperature difference between the top and the root is about 90 ℃. Also, the temperature on the advancing side (AS) is 15 ℃ higher than that on the retreating side (RS) for two symmetric points at the same thickness of the weld. Moreover, on the weld top the Cu foil is broken up into small particles and distributed in the nugget zone (NZ), while Cu with flake structure is presented on the weld root of the NZ on the AS. It is interesting that the NZ consists of many onion rings, and in NZ the metal shows textured structure, which might be ascribed to the change of material flow along the vertical direction of the weld seam.
Key words:  aluminum alloy thick plate    friction stir welding    temperature distribution    local material    plastic flow
               出版日期:  2017-12-25      发布日期:  2018-05-08
ZTFLH:  TG453.9  
基金资助: 国家自然科学基金(51265043;51265042)
作者简介:  毛育青:男,1987年生,博士,主要研究方向为搅拌摩擦焊、激光焊、增材制造及金属基复合材料等 E-mail:maoyuqing-8888@163.com
引用本文:    
毛育青,柯黎明,陈玉华,刘奋成. 铝合金厚板搅拌摩擦焊焊缝局部金属的塑性流动特征[J]. 《材料导报》期刊社, 2017, 31(24): 145-149.
MAO Yuqing, KE Liming, CHEN Yuhua, LIU Fencheng. Plastic Flow Characteristic of Local Material in the Friction Stir Weld Seam of Aluminum Alloy Thick Plates. Materials Reports, 2017, 31(24): 145-149.
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http://www.mater-rep.com/CN/10.11896/j.issn.1005-023X.2017.024.029  或          http://www.mater-rep.com/CN/Y2017/V31/I24/145
1 Fuller C B, Mahoney M W, Calabrese M, et al. Evolution of microstructure and mechanical properties in naturally aged 7050 and 7075 Al friction stir welds[J]. Mat Sci Eng A, 2010,527(9):2233.
2 Mao Y Q, Ke L M, Liu F C, et al. Effect of tool pin eccentricity on microstructure and mechanical properties in friction stir welded 7075 aluminum alloy thick plate[J]. Mater Des, 2014,62(62):334.
3 Ke Liming, Xing Li, Xu Weiping. Microstructure and properties of welding joints for cast magnesium alloy AZ81A[J]. J Mater Eng, 2005(1):41(in Chinese).
柯黎明, 邢丽, 徐卫平. AZ81A镁合金焊接接头的组织与性能[J]. 材料工程, 2005,(1):41.
4 Xing Li, Ke Liming, Liu Geping, et al. Microstructure and mechanical properties of a friction stir welded LD10 Aluminum[J]. Trans China Weld Inst, 2002,23(6):55(in Chinese).
邢丽, 柯黎明, 刘鸽平, 等. 铝合金LD10的搅拌摩擦焊组织及性能分析[J]. 焊接学报, 2002,23(6):55.
5 Sharma C, Dwivedi D K, Kumar P. Effect of welding parameters on microstructure and mechanical properties of friction stir welded joints of AA7039 aluminum alloy[J]. Mater Des, 2012,36:379.
6 Palanivel R, Koshy Mathews P, Murugan N, et al. Effect of tool rotational speed and pin profile on microstructure and tensile strength of dissimilar friction stir welded AA5083-H111 and AA6351-T6 aluminum alloys[J]. Mater Des, 2012,40:7.
7 Wang Xiaodong, Ke Liming, Xing Li, et al. Effects of thread number of stirring pin and pluge depth on transfer of metal in weld thickness direction[J]. Chin J Nonferrous Met, 2012,20(1):100(in Chinese).
王晓东, 柯黎明, 邢丽, 等. 搅拌针表面螺纹头数与轴肩下压量对金属轴向迁移的影响[J]. 中国有色金属学报, 2012,20(1):100.
8 Ghetiya N D, Patel K M, Patel Anup B. Prediction of temperature at weld line in air and immersed friction stir welding and its experimental validation[J]. Int J Adv Manuf Tech, 2015,79(5):1239.
9 Xu W F, Liu J H, Luan G H, et al. Temperature evolution, microstructure and mechanical properties of friction stir welded thick 2219-O aluminum alloy joints[J]. Mater Des, 2009,30(6):1886.
10Canaday Clinton T, Moore Matthew A, Tang W, et al. Through thickness property variations in a thick plate AA7050 friction stir welded joint[J]. Mat Sci Eng A, 2013,559(3):678.
11Ke Liming, Pan Jiluan, Xing Li, et al. Influence of pin shape on weld transverse morphology in friction stir welding[J]. Trans China Weld Inst, 2007,28(5):16(in Chinese).
柯黎明, 潘际銮, 邢丽, 等. 搅拌针形状对搅拌摩擦焊焊缝截面形貌的影响[J]. 焊接学报, 2007,28(5):16.
12Khodaverdizadeh H, Heidarzadeh A, Saeid T. Effect of tool pin profile on microstructure and mechanical properties of friction stir welded pure copper joints[J]. Mater Des, 2013,45(7):265.
13Wu Hongyan. The influence of material property on the welding plastic metal flow of friction stir welding[D]. Nanchang: Nanchang Hangkong University, 2011:22(in Chinese).
吴鸿燕. 材料性能对铝合金搅拌摩擦焊焊缝塑性金属流动行为的影响[D]. 南昌: 南昌航空大学, 2011:22.
14Trueba Jr L, Heredia G, Rybicki D, et al. Effect of tool shoulder features on defects and tensile properties of friction stir welded aluminum 6061-T6[J]. J Mater Process Tech, 2015,219:271.
15Schneider J A, Nunes A C. Characterization of plastic flow and resulting microtextures in a friction stir weld[J]. Metall Mater Trans B, 2004,35(4):777.
16Ke Liming, Pan Jiluan, Xing Li, et al. Sucking-extruding theory for the material flow in friction stir welds[J]. J Mech Eng, 2009,45(4):89(in Chinese).
柯黎明, 潘际銮, 邢丽, 等. 搅拌摩擦焊焊缝金属塑性流动的抽吸-挤压理论[J]. 机械工程学报, 2009,45(4):89.
17Ke Liming, Xing Li, Indacochea J E. The materials flow pattern and model in the friction stir welding of aluminum alloy[C]∥Materials Solutions 2001.Indianapolis,USA,2001.
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