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首页> 外文期刊>Numerical Heat Transfer, Part A. Application: An International Journal of Computation and Methodology >Numerical modeling of non-Fourier heat transfer and fluid flow during plasma arc welding of AISI 304 stainless steel
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Numerical modeling of non-Fourier heat transfer and fluid flow during plasma arc welding of AISI 304 stainless steel

机译:AISI 304不锈钢等离子弧焊过程中非傅立叶传热和流体流动的数值模拟

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This paper is an attempt to study the evolution of temperature profiles and weld pool geometry during plasma arc welding (PAW) by solving the transient Navier-Stokes and Energy equations. The analysis for an AISI 304 stainless steel rectangular plate was carried out using a flexible written program in Fortran. Due to the low accuracy of the Fourier heat transfer equation for short times and large dimensions, a non-Fourier form of heat transfer equation was used. Gaussian heat source is considered as the heat source model. The fluid flow in the molten pool is of interest because it can change the temperature distribution in and around the molten zone. The governing equations for fluid flow were solved by the finite-volume method in which the SIMPLE method was utilized for pressure-velocity coupling. The effects of heat conduction, fluid flow, and force actions at the weld pool were considered. Thermo-physical properties such as thermal conductivity, specific heat, and dynamic viscosity vary as a function of temperature. There are two mechanisms involved which actively cause heat transfer to the surroundings: radiation and convection heat transfer. The numerical results are compared to the experimental data. The results corroborate that the weld pool thickness in the cross section of PAW and the time taken by molten metal to reach the end of thick metal are in good agreement with the experimental measurements. Finally, the results obtained from the assumed Fourier heat transfer are compared for the same study.
机译:本文试图通过求解瞬态Navier-Stokes和Energy方程来研究等离子弧焊(PAW)过程中温度曲线和焊池几何形状的演变。使用Fortran中灵活的编写程序对AISI 304不锈钢矩形板进行了分析。由于傅立叶传热方程在短时间内和大尺寸时精度较低,因此使用了非傅立叶形式的传热方程。高斯热源被认为是热源模型。熔融池中的流体流是令人关注的,因为它可以改变熔融区中和周围的温度分布。流体流动的控制方程通过有限体积法求解,其中SIMPLE方法用于压力-速度耦合。考虑了热传导,流体流动和焊缝作用力的影响。热物理性质(如导热系数,比热和动态粘度)随温度而变化。有两种机制可以有效地将热量传递到周围环境:辐射和对流传热。将数值结果与实验数据进行比较。结果证实了PAW横截面中的熔池厚度和熔融金属到达厚金属端部所花费的时间与实验测量值非常吻合。最后,对于相同的研究,对假设的傅立叶传热所获得的结果进行了比较。

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