钨极惰性气体焊接工艺参数对 2205 DSS 焊接件硬度和耐腐蚀性影响的深入研究:新实验设计参数研究与优化

Mohamed S. Melad, M. A. Gebril, Farag Shuaeib, Rafaa M. Esmaael, Mohamed A. El-Hag
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引用次数: 0

摘要

这项工作的目的是利用响应面方法研究和分析氩弧焊焊接电流(WC)、焊接速度(WS)和以氩气为保护气体的 N2 等焊接工艺参数如何影响 2205 DSS 焊件的硬度和耐腐蚀性。由于含有等量的铁素体相和奥氏体相以及合金元素,双相不锈钢 DSS 具有良好的机械性能和耐腐蚀性。然而,由于焊接过程改变了这两相的分布,同时合金也受到热干扰,焊接区以及 DSS 热影响区的机械特性和耐腐蚀性能受到干扰。因此,本研究对上述参数对 DSS 质量的影响进行了深入研究。结果表明,增加焊接电流的同时降低焊接速度(对应于最高热输入)可降低临界点蚀电位和焊接区硬度,但提高热影响区硬度。在提高焊接速度的同时降低焊接电流,也得到了相同的结果,这相当于最低的热输入。然而,在氩气保护气体中添加少量 N2 会导致临界点蚀电位升高,焊缝和热影响区的硬度降低。数值、RSM 规划的实验结果表明,最佳焊接电流为 175A、焊接速度为 170 mm/min、氩气保护气体中含有 10% 的 N2 时,临界点蚀电位最高可达 318 mV,焊缝和热影响区的硬度分别达到约 288 和 286 HV 的母材金属硬度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An In-Depth Investigation of the Effects of Tungsten Inert Gas Welding Process Parameters on Hardness and Corrosion Resistance of 2205 DSS Weldments: New Design of Experiment Parametric Studies and Optimization
The aim of this work is to examine and analyze, using response surface methodology, how the TIG welding process parameters of welding current (WC), welding speed (WS), and N2 with argon as shielding gas affect the hardness and corrosion resistance of 2205 DSS weldments. Due to the equal amounts of ferrite and austenite phases and alloying elements, duplex stainless steel DSS offers good mechanical properties and corrosion resistance. The mechanical characteristics and resistance to corrosion of the weld zone, as well as the heat-affected zone of the DSS, are, however, disturbed as a result of the welding process since it changes the distribution of these two phases and also the alloy is thermally disturbed. Therefore, in this work, an in-depth investigation of the effects of the above-mentioned parameters on the DSS quality has been performed. Results showed that increasing welding current while decreasing welding speed, which corresponds to the highest heat input, led to lower critical pitting potential and weld zone hardness but higher heat-affected zone hardness. The same results were obtained for decreasing welding current while increasing welding speed, which correspond to the lowest heat input. However, the addition of a small percent (%) of N2 to argon shielding gas resulted in increasing the critical pitting potential and decreasing the hardness in welds and heat-affected zones. Numerically, the RSM planned experimental results showed that an optimum welding current of 175A, welding speed of 170 mm/min, and 10% N2 with argon as shielding gas maximized the critical pitting potential up to 318 mV and optimized the hardness of the weld and heat-affected zone to about base metal hardness of 288 and 286 HV, respectively.
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