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Finite element simulation and regression modeling of machining attributes on turning AISI 304 stainless steel

机译:转动AISI 304不锈钢加工属性的有限元模拟和回归建模

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To-date, the usage of finite element analysis (FEA) in the area of machining operations has demonstrated to be efficient to investigate the machining processes. The simulated results have been used by tool makers and researchers to optimize the process parameters. As a 3D simulation normally would require more computational time, 2D simulations have been popular choices. In the present article, a Finite Element Model (FEM) using DEFORM 3D is presented, which was used to predict the cutting force, temperature at the insert edge, effective stress during turning of AISI 304 stainless steel. The simulated results were compared with the experimental results. The shear friction factor of 0.6 was found to be best, with strong agreement between the simulated and experimental values. As the cutting speed increased from 125 m/min to 200 m/min, a maximum value of 750 MPa stress as well as a temperature generation of 650 at the insert edge have been observed at rather higher feed rate and perhaps a mid level of depth of cut. Furthermore, the Response Surface Methodology (RSM) model is developed to predict the cutting force and temperature at the insert edge.
机译:迄今为止,在加工操作领域的有限元分析(FEA)的用途表明,研究加工过程是有效的。模拟结果已被刀具制造商和研究人员使用,以优化工艺参数。随着3D模拟通常需要更多的计算时间,2D仿真是流行的选择。在本文中,提出了一种使用变形3D的有限元模型(FEM),其用于预测切割力,在插入边缘处的温度,在AISI 304不锈钢转动期间有效应力。将模拟结果与实验结果进行了比较。发现0.6的剪切摩擦因子是最好的,在模拟和实验值之间具有强烈的一致性。随着切削速度从125米/分钟的切削速度增加至200米/分钟,在更高的进料速率下观察到最大值为750MPa应力以及在插入边缘处的650的温度产生,并且可能是深度的中间水平切割。此外,开发了响应面方法(RSM)模型以预测插入边缘处的切割力和温度。

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