An Experimental Study On Friction Stir Welding Of Aluminum-Magnesium Alloys For Improved Mechanical Properties Of Tailor Welded Blanks.

Manoj M. Joshi, A. Ubale
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引用次数: 2

Abstract

Tailor welded blanks (TWB) are used in automotive and aerospace industries as they offer weight saving followed by cost saving and improved fuel economy. Being light in weight and having low cost, Aluminum alloys have piqued the interest of scientists. Friction Stir Welding (FSW) is a well-known accepted technique used since 1991 worldwide for Aluminum and its alloys. Due to friction stir welding, mechanical changes occur due to stirring action at the joint. Also the inter-metallic compounds, kissing bond formation, onion ring formation etc. are defects encountered in the nugget zone of welding. Hence, a novel technique is suggested to carry out the friction stir welding using a blend of techniques viz. double sided friction stir welding and multi objective optimization of process parameters. For experimentation, AA 5182 and AA 5754-Aluminum Magnesium alloys of 5000 series are used with sheet size of 1.5 mm thickness. Experimentation was carried out on a vertical machining center, with circular, square, and triangular tool pin profiles with a tool rotational speed range between 1500 -1800 rpm and a welding speed range of 40 mm/min.-60 mm/min. For the analysis purpose, L9 orthogonal array was used and Grey Relational Analysis(GRA) was employed and ASTM standards were used for tensile testing. Base sample materials of AA 5182 and AA5754 are having ultimate tensile strengths of 289.58 N/mm2 and 220.75N/mm2respectively. The designed welded blank of the two materials recorded maximum ultimate tensile strength of 268.11N/mm2which was remarkable for FSW. Welded joint efficiency was found to be 92.73% and percentage elongation of TWB was found to be 44% as compared to the base metals.
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铝镁合金搅拌摩擦焊改善拼焊板力学性能的试验研究。
定制焊接板(TWB)用于汽车和航空航天工业,因为它们可以减轻重量,从而节省成本并提高燃油经济性。由于重量轻、成本低,铝合金引起了科学家们的兴趣。自1991年以来,搅拌摩擦焊(FSW)是一种公认的铝及其合金焊接技术。由于搅拌摩擦焊,由于接头处的搅拌作用而发生力学变化。金属间化合物、亲和键的形成、洋葱环的形成等是焊接熔核区经常遇到的缺陷。为此,提出了一种双面搅拌摩擦焊接和工艺参数多目标优化相结合的搅拌摩擦焊接新技术。实验选用5000系列的AA 5182和AA 5754-铝镁合金,板材厚度为1.5 mm。实验在立式加工中心进行,采用圆形、方形和三角形三种刀具销型,刀具转速范围为1500 -1800 rpm,焊接速度范围为40 mm/min。-60毫米/分钟。分析采用L9正交阵列,灰色关联分析(GRA),拉伸试验采用ASTM标准。AA 5182和AA5754基样材料的极限抗拉强度分别为289.58 N/mm2和220.75N/mm2。设计的两种材料焊接坯的最大极限抗拉强度为268.11N/mm2,在FSW中表现优异。与母材相比,焊头效率为92.73%,伸长率为44%。
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