电阻点焊过程中参数对 IN-625 焊块形成和拉伸性能影响的研究

IF 1.5 4区 工程技术 Q3 ENGINEERING, MECHANICAL
A. Mashhuriazar, S. E. Mirsalehi, K. Moradi
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引用次数: 0

摘要

采用热力学有限元(FE)模型研究了电阻点焊(RSW)电流强度、时间和电极力对 IN-625 超合金薄板的温度分布和金块尺寸的影响。为了评估和优化 RSW 焊接 IN-625 合金的机械性能,根据模拟结果开发了一套程序。采用塔口 L9 实验设计研究了焊接样品的机械性能与峰值载荷、破坏模式和能量的函数关系。研究结果表明,接头断裂模式和强度受工艺参数的影响很大。因此,焊接电流、电极力和焊接时间都对 IN-625 合金点焊接头的剪切强度有显著影响,影响程度分别为 62.05%、24.06% 和 12.84%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

An Investigation of the Effects of Parameters on the Development of Nuggets and the Tensile Properties of IN-625 During Resistance Spot Welding

An Investigation of the Effects of Parameters on the Development of Nuggets and the Tensile Properties of IN-625 During Resistance Spot Welding

A thermomechanical finite element (FE) model was used to examine the effects of resistance spot welding (RSW) current intensity, time, and electrode force on the distribution of temperatures and the size of nuggets of IN-625 superalloy sheets. In order to evaluate and optimize the mechanical properties of RSW welded IN-625 alloy, a procedure was developed based on simulation results. A taguchi L9 experimental design was used to study the mechanical properties of welded samples as a function of peak load, failure mode, and energy. According to the findings, joint fracture modes and strength are significantly influenced by process parameters. Consequently, welding current, electrode force, and welding time all had significant impacts on the shear strength of IN-625 Alloy spot welding joints, with impacts of 62.05%, 24.06%, and 12.84%, respectively.

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来源期刊
Experimental Techniques
Experimental Techniques 工程技术-材料科学:表征与测试
CiteScore
3.50
自引率
6.20%
发文量
88
审稿时长
5.2 months
期刊介绍: Experimental Techniques is a bimonthly interdisciplinary publication of the Society for Experimental Mechanics focusing on the development, application and tutorial of experimental mechanics techniques. The purpose for Experimental Techniques is to promote pedagogical, technical and practical advancements in experimental mechanics while supporting the Society''s mission and commitment to interdisciplinary application, research and development, education, and active promotion of experimental methods to: - Increase the knowledge of physical phenomena - Further the understanding of the behavior of materials, structures, and systems - Provide the necessary physical observations necessary to improve and assess new analytical and computational approaches.
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