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异种金属钨极惰性气体保护焊工艺参数的试验研究与参数优化

Experimental Investigation and Parametric Optimization of the Tungsten Inert Gas Welding Process Parameters of Dissimilar Metals.

作者信息

Assefa Anteneh Teferi, Ahmed Gulam Mohammed Sayeed, Alamri Sagr, Edacherian Abhilash, Jiru Moera Gutu, Pandey Vivek, Hossain Nazia

机构信息

Department of Mechanical Engineering, Adama Science and Technology University, Adama 1888, Ethiopia.

Center of Excellence (COE) for Advanced Manufacturing Engineering, Program of Mechanical Design and Manufacturing Engineering, School of Mechanical, Chemical and Materials Engineering, Adama Science and Technology University, Adama 1888, Ethiopia.

出版信息

Materials (Basel). 2022 Jun 23;15(13):4426. doi: 10.3390/ma15134426.

Abstract

Special attention is required when joining two materials with distinct chemical, physical and thermal properties in order to make the joint bond robust and rigid. The goal of this study was to see how significantly different tungsten inert gas (TIG) welding process parameters (welding current, gas flow rate, root gap, and filler materials) affect mechanical properties (tensile, hardness, and flexural strength), as well as the bead width and microstructural properties, of dissimilar welds In comparison to SS 316 and AISI 1020 low-carbon steel. TIG welding parameters were optimized in this study using a Taguchi-based desirability function analysis (DFA). From the experimental results, it was observed that welded samples employing ER-309L filler wires had a microstructure consisting of a delta ferrite network in an austenite matrix. The tensile strength experimental results revealed that welding current, followed by GFR, was a highly influential parameter on tensile strength. Weld metals had higher hardness and flexural strength than stainless steel and carbon steel base metals. This was supported by the fact that the results of our tests had hardness ratings greater than a base for the FZ and HAZ, and that no crack was observed in the weld metal following U-shape flexural bending. Welding current has a significant impact on the bead width of welded specimens, followed by root gap. Furthermore, the dissimilar welded sample responses were optimized with a composite desirability percentage improvement of 22.90% by using a parametric setting of (A2B4C4D2). Finally, the validation of the experiment was validated by our confirmation test results, which agreed with the predictive optimum parameter settings.

摘要

当连接具有不同化学、物理和热性能的两种材料时,需要特别注意,以使接头牢固且坚固。本研究的目的是观察钨极惰性气体(TIG)焊接工艺参数(焊接电流、气体流量、根部间隙和填充材料)的显著差异如何影响异种焊缝的机械性能(拉伸、硬度和弯曲强度)以及焊缝宽度和微观结构性能,与SS 316和AISI 1020低碳钢相比。本研究使用基于田口的合意性函数分析(DFA)对TIG焊接参数进行了优化。从实验结果可以看出,采用ER-309L填充焊丝的焊接样品的微观结构由奥氏体基体中的δ铁素体网络组成。拉伸强度实验结果表明,焊接电流其次是气体流量率,是对拉伸强度有高度影响的参数。焊缝金属的硬度和弯曲强度高于不锈钢和碳钢母材。我们的测试结果表明,热影响区和焊缝区的硬度评级高于母材,并且在U形弯曲后焊缝金属中未观察到裂纹,这支持了上述结论。焊接电流对焊接试样的焊缝宽度有显著影响,其次是根部间隙。此外,通过使用(A2B4C4D2)的参数设置,异种焊接样品的响应以22.90%的复合合意性百分比提高进行了优化。最后,我们的确认测试结果验证了实验的有效性,该结果与预测的最佳参数设置一致。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7d95/9267495/3a13fba98e05/materials-15-04426-g001.jpg

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