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Joint Formation Mechanism of Rotary Friction Welding Characterized by Seaming Ratio |
Yuanzhao LV1,2, Jinglong LI2( ), Peng LI2, Tao SUN1, Jiangtao XIONG1, Fusheng ZHANG2 |
1 State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an 710072, China 2 Shaanxi Key Laboratory of Friction Welding Technologies,Northwestern Polytechnical University, Xi'an 710072, China |
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Cite this article:
Yuanzhao LV, Jinglong LI, Peng LI, Tao SUN, Jiangtao XIONG, Fusheng ZHANG. Joint Formation Mechanism of Rotary Friction Welding Characterized by Seaming Ratio. Chinese Journal of Materials Research, 2017, 31(4): 261-266.
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Abstract Weld joints of low carbon steel Q235 was prepared by rotary friction welding technique, and the effect of friction time and forge pressure on the seaming ratio and metallurgical quality of weld joints was investigated. The results show that the tensile strength of the seaming zones prepared by the rotary friction welding with different welding parameters is greater than or equal to that of the base metal, in other word, the variation of welding parameters will simply affect the seaming ratio (the ratio of the length of seamed portion to the total length of a joint), while the quality of joints is direct determined by the seaming ratio. Further study shows that the seaming ratio increases with the forging pressure, but the increment slows down gradually and eventually reaches 100% when the forging pressure reaches a critical value. The axial shortening amount increases along with friction time, which then decreases the seaming ratio. The width of the weld zone becomes larger and the grain size increases with friction time. The grain size is not uniform near the weld seam with streamline structure presented. It is concluded that large forging pressure and short friction time are helpful to improve the seaming ratio, reduce the grain size and enhance the quality of the joints.
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Received: 13 June 2016
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Fund: Supported by National Natural Science Foundation of China (Nos.51575451 & 51475376 ) |
[1] | Kevin J G.Friction welding takes on new applications[J]. Weld. J., 1997, 76: 39 | [2] | Spindler D E.What industry needs to know about friction welding[J]. Weld. J., 1994, 72: 37 | [3] | Liu J.The developments and applications of friction welding in America[J]. Weld. Technol., 1995, 34(4): 46(刘军. 摩擦焊在美国的应用与发展[J]. 焊接技术, 1995, (4): 46) | [4] | Sathiya P, Aravindan S, Haq A N.Some experimental investigations on friction welded stainless steel joints[J]. Mater. Des., 2008, 29: 1099 | [5] | Li P, Li J L, Li X, et al.A study of the mechanisms involved in initial friction process of continuous drive friction welding[J]. J. Adhes. Sci. Technol., 2015, 29: 1246 | [6] | Kimura M, Inoue H, Kusaka M, et al.Analysis method of friction torque and weld interface temperature during friction process of steel friction welding[J]. J. Solid Mech. Mater.Eng., 2010, 4: 401 | [7] | Kimura M, Kusaka M, Seo K, et al.Joining phenomena during friction stage of A7075-T6 aluminium alloy friction weld[J]. Sci. Technol. Weld. Join., 2013, 10: 378 | [8] | Liu Z J, Li W X, Ji S D, et al.3D numerical simulation on temperature field and material flow during continuous driven Friction welded 45 steel[J]. Hot Work. Technol., 2014, 43: 181(刘占军, 李文星, 姬书得等. 连续驱动摩擦焊接45钢过程温度与材料流动的3D数值模拟[J]. 热加工工艺, 2014, 43: 181) | [9] | Ji S D, Liu J G, Zhang L G, et al.Effect of material flow on flash formation during continuous driven friction welding[J]. Trans. China Weld. Institut., 2013, 34(4): 31(姬书得, 刘建光, 张利国等. 材料流动对连续驱动摩擦焊飞边形成的影响[J]. 焊接学报, 2013, 34(4): 31) | [10] | Yang M E.Design and optimization of the piston rod continuous driven friction welding parameters [D]. Xiangtan: Hunan University of Science and Technology, 2012(杨明鄂. 活塞杆连续驱动摩擦焊接工艺参数的设计与优化[D]. 湘潭: 湖南科技大学, 2012) | [11] | Wang Y.Continuous drive friction welding process research of high temperature alloy (GH2132, GH4169)/42CrMo steel [D]. Dalian: Dalian Jiaotong University, 2014(王毅. 高温合金(GH2132、GH4169)/42CrMo钢连续驱动摩擦焊工艺研究 [D]. 大连: 大连交通大学, 2014) | [12] | Ates H, Turker M, Kurt A.Effect of friction pressure on the properties of friction welded MA956 iron-based superalloy[J]. Mater. Des., 2007, 28: 948 | [13] | Liu Q K.Basic Principle of Material Forming [M]. Beijing: China Machine Press, 2005(刘全坤. 材料成形基本原理[M]. 北京: 机械工业出版社, 2005) | [14] | Li W Y, Wang F F.Modeling of continuous drive friction welding of mild steel[J]. Mater. Sci. Eng., 2011, 528A: 5921 |
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