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Analytical and numerical investigations of weld bead shape in plasma arc welding of thin Ti-6al-4v sheets

机译:Ti-6al-4v薄板等离子弧焊接中焊缝形状的分析和数值研究

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In this research work, a new analytical model has been developed to predict the temperature distribution during plasma arc welding of thin Ti-6Al-4V sheets. Dhinakaran's model based on a three-dimensional parabolic Gaussian heat source is considered as a plasma arc heat source moving on a semi-infinite body to derive the analytical model and the same heat source model is substituted in the three-dimensional Fourier's law of heat conduction and implemented in the finite element package. Thermo physical properties, such as density, specific heat, and thermal conductivity, are used as temperature-dependent properties in finite element simulation. Numerical simulation is carried out using COMSOL. The new analytical model is expressed as a function of three-dimensional spatial co-ordinates and the time co-ordinate. A computer program has been written to solve the analytical model in order to obtain the distribution of transient temperature at any point of interest. The transient temperature distribution predicted by the analytical model has been compared with both the experimental result and the numerical result. Experimental work is carried out to measure the thermal cycle during welding. The thermal cycle is measured by using an infrared thermometer. Very good correlation has been obtained between the predicted transient temperature by analytical solution and the measured temperature, as well as the finite element simulation result. This provides a reliable alternative for using these analytical solutions in the future to obtain the thermal cycle, distortion, and thermal stress during plasma arc welding.
机译:在这项研究工作中,已经开发了一种新的分析模型来预测Ti-6Al-4V薄板等离子弧焊接过程中的温度分布。基于三维抛物线高斯热源的Dhinakaran模型被认为是在半无限体上移动的等离子弧热源,以得出解析模型,并且相同的热源模型被替换为三维傅里叶热传导定律并在有限元封装中实现。在有限元模拟中,热物理性质(例如密度,比热和导热系数)用作与温度相关的性质。使用COMSOL进行数值模拟。新的分析模型表示为三维空间坐标和时间坐标的函数。编写了一个计算机程序来求解分析模型,以便获得感兴趣的任何点处的瞬态温度分布。将解析模型预测的瞬态温度分布与实验结果和数值结果进行了比较。进行实验工作以测量焊接期间的热循环。通过使用红外温度计测量热循环。解析溶液预测的瞬态温度与测得的温度以及有限元模拟结果之间具有很好的相关性。这为将来使用这些分析解决方案以获得等离子弧焊期间的热循环,变形和热应力提供了可靠的替代方法。

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