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Evaluation of Machining Parameters of Hot Turning of Stainless Steel (Type 316) by Applying ANN and RSM

机译:应用ANN和RSM评估不锈钢(316型)热车削的加工参数

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Stainless steel (Type 316) workpiece was heated by the mixture of Liquid Petroleum Gas (LPG) and oxygen gas, and it was machined in a lathe under different cutting conditions to study the hot machining characteristics. The orthogonal turning operations were carried out on stainless steel (Type 316) using tungsten carbide (WC) cutting tool insert. During machining the cutting speed (Vc), feed rate (fs), depth of cut (a_p), and temperature of the workpiece were varied in the range of 200°C, 400°C, and 600°C. Turning experiments were designed based on the statistical three-level full factorial experimental design techniques. An artificial neural network (ANN) and response surface model (RSM) have been developed, which can predict the surface roughness of the machined workpiece. The experimental results concur well with the results obtained from the predictive models.
机译:将不锈钢(316型)工件通过液化石油气(LPG)和氧气的混合物加热,并在不同切削条件下的车床中进行加工,以研究热加工特性。使用碳化钨(WC)切削刀具刀片对不锈钢(316型)进行正交车削。在加工过程中,切削速度(Vc),进给速度(fs),切削深度(a_p)和工件温度在200°C,400°C和600°C的范围内变化。基于统计三级全因子实验设计技术设计了车削实验。已经开发了可以预测加工工件表面粗糙度的人工神经网络(ANN)和响应表面模型(RSM)。实验结果与从预测模型获得的结果一致。

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