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Performance comparison of conventional and wiper ceramic inserts in hard turning through artificial neural network modeling

机译:通过人工神经网络建模比较常规陶瓷刀片和雨刮器陶瓷刀片在硬车削中的性能

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摘要

Hard turning with ceramic tools provides an alternative to grinding operation in machining high precision and hardened components. But, the main concerns are the cost of expensive tool materials and the effect of the process on machinability. The poor selection of cutting conditions may lead to excessive tool wear and increased surface roughness of workpiece. Hence, there is a need to investigate the effects of process parameters on machinability characteristics in hard turning. In this work, the influence of cutting speed, feed rate, and machining time on machinability aspects such as specific cutting force, surface roughness, and tool wear in AISI D2 cold work tool steel hard turning with three different ceramic inserts, namely, CC650, CC650WG, and GC6050WH has been studied. A multilayer feed-forward artificial neural network (ANN), trained using error back-propagation training algorithm has been employed for predicting the machinability. The input–output patterns required for ANN training and testing are obtained from the turning experiments planned through full factorial design. The simulation results demonstrate the effectiveness of ANN models to analyze the effects of cutting conditions as well as to study the performance of conventional and wiper ceramic inserts on machinability.
机译:使用陶瓷工具进行硬车削是加工高精度和硬化零件的替代磨削操作。但是,主要的问题是昂贵的工具材料的成本以及该过程对可加工性的影响。切削条件选择不当可能会导致过度的刀具磨损并增加工件的表面粗糙度。因此,需要研究工艺参数对硬车削中切削性能的影响。在这项工作中,切削速度,进给速度和加工时间对可加工性方面的影响,例如比切削力,表面粗糙度和AISI D2冷加工工具钢硬车削中的切削磨损,这些工具采用三种不同的陶瓷刀片,即CC650,已研究CC650WG和GC6050WH。使用误差反向传播训练算法训练的多层前馈人工神经网络(ANN)已用于预测可加工性。 ANN训练和测试所需的输入输出模式是通过通过全因子设计计划的车削实验获得的。仿真结果证明了ANN模型在分析切削条件的影响以及研究常规和擦拭陶瓷刀片对切削性能方面的有效性。

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