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Ann modeling of kerf transfer in Co2 laser cutting and optimization of cutting parameters using monte carlo method

机译:Ann建模Co2激光切割中的切缝转移并使用Monte Carlo方法优化切割参数

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In this paper, an attempt has been made to develop a mathematical model in order to study the relationship between laser cutting parameters such as laser power, cutting speed, assist gas pressure and focus position, and kerf taper angle obtained in CO2 laser cutting of AISI 304 stainless steel. To this aim, a single hidden layer artificial neural network (ANN) trained with gradient descent with momentum algorithm was used. To obtain an experimental database for the ANN training, laser cutting experiment was planned as per Taguchi’s L27 orthogonal array with three levels for each of the cutting parameters. Statistically assessed as adequate, ANN model was then used to investigate the effect of the laser cutting parameters on the kerf taper angle by generating 2D and 3D plots. It was observed that the kerf taper angle was highly sensitive to the selected laser cutting parameters, as well as their interactions. In addition to modeling, by applying the Monte Carlo method on the developed kerf taper angle ANN model, the near optimal laser cutting parameter settings, which minimize kerf taper angle, were determined.
机译:为了研究AISI的CO2激光切割中获得的激光功率,切割速度,辅助气体压力和聚焦位置以及切口锥角等激光切割参数之间的关系,本文尝试建立数学模型。 304不锈钢。为了这个目的,使用了带有动量算法的梯度下降训练的单隐层人工神经网络(ANN)。为了获得用于ANN训练的实验数据库,按照Taguchi的L27正交阵列计划了激光切割实验,每个切割参数具有三个级别。经统计学评估为适当,然后使用ANN模型通过生成2D和3D图来研究激光切割参数对切缝锥角的影响。观察到切口锥角对所选的激光切割参数及其相互作用高度敏感。除了建模之外,通过在已开发的切缝锥角ANN模型上应用蒙特卡罗方法,还确定了使切缝锥角最小化的接近最佳的激光切割参数设置。

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