Hanif Muhammad, Shah Abdul Hakim, Shah Imran, Mumtaz Jabir
Schools of Mechanical Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China.
Department of Physics and Chemistry, Khushal Khan Khattak University Karak, Karak 27400, Pakistan.
Materials (Basel). 2023 May 15;16(10):3732. doi: 10.3390/ma16103732.
Mild steel welded products are widely used for their excellent ductility. Tungsten inert gas (TIG) welding is a high-quality, pollution-free welding process suitable for a base part thickness greater than 3 mm. Fabricating mild steel products with an optimized welding process, material properties, and parameters is important to achieve better weld quality and minimum stresses/distortion. This study uses the finite element method to analyze the temperature and thermal stress fields during TIG welding for optimum bead geometry. The bead geometry was optimized using grey relational analysis by considering the flow rate, welding current, and gap distance. The welding current was the most influential factor affecting the performance measures, followed by the gas flow rate. The effect of welding parameters, such as welding voltage, efficiency, and speed on the temperature field and thermal stress were also numerically investigated. The maximum temperature and thermal stress induced in the weld part were 2083.63 °C and 424 MPa, respectively, for the given heat flux of 0.62 × 10 W/m. Results showed that the temperature increases with the voltage and efficiency of the weld joint but decreases with an increase in welding speed.
低碳钢焊接产品因其出色的延展性而被广泛使用。钨极惰性气体(TIG)焊接是一种高质量、无污染的焊接工艺,适用于厚度大于3毫米的母材。采用优化的焊接工艺、材料性能和参数来制造低碳钢产品,对于获得更好的焊接质量以及最小的应力/变形至关重要。本研究使用有限元方法分析TIG焊接过程中的温度和热应力场,以实现最佳的焊缝几何形状。通过考虑流量、焊接电流和间隙距离,采用灰色关联分析对焊缝几何形状进行了优化。焊接电流是影响性能指标的最主要因素,其次是气体流量。还对焊接电压、效率和速度等焊接参数对温度场和热应力的影响进行了数值研究。对于给定的0.62×10 W/m热通量,焊缝部分产生的最高温度和热应力分别为2083.63℃和424兆帕。结果表明,温度随焊接接头的电压和效率升高而升高,但随焊接速度的增加而降低。