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首页> 外文期刊>Periodica Polytechnica. Mechanical Engineering >Application Potential of Fuzzy and Regression in Optimization of MRR and Surface Roughness during Machining of C45 Steel
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Application Potential of Fuzzy and Regression in Optimization of MRR and Surface Roughness during Machining of C45 Steel

机译:C45钢材MRR和表面粗糙度优化模糊和回归的应用潜力

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摘要

In the machining industry, coolant has an important role due to their lubrication, cooling and chip removal functions. Using coolant can improve machining process efficiency, tool life, surface quality and it can reduce cutting forces and vibrations. However, health and environmental problems are encountered with the use of coolants. Hence, there has been a high demand for deep cryogenic treatment to reduce these harmful effects. For this purpose, -196 degrees C LN2 gas is used to improve machining performance. This study focuses on the prediction of surface roughness and material removal rate with cryogenically treated M2 HSS tool using fuzzy logic and regression model. The turning experiments are conducted according to Taguchi's L9 orthogonal array. Surface roughness and material removal rate during machining of C45 steel with HSS tool are measured. Cutting speed, feed rate, and depth of cut are considered as machining parameters. A model depended on a regression model is established and the results obtained from the regression model are compared with the results based on fuzzy logic and experiment. The effectiveness of regression models and fuzzy logic has been determined by analyzing the correlation coefficient and by comparing experimental results. Regression model gives closer values to experimentally measured values than fuzzy logic. It has been concluded that regression-based modeling can be used to predict the surface roughness successfully.
机译:在加工行业中,冷却液由于其润滑,冷却和芯片去除功能而具有重要作用。使用冷却液可以提高加工过程效率,刀具寿命,表面质量,可以减少切削力和振动。然而,使用冷却剂遇到健康和环境问题。因此,对深度低温治疗有很大的要求,以减少这些有害影响。为此目的,用于改善加工性能的-196℃。本研究专注于使用模糊逻辑和回归模型的低温处理的M2 HSS工具预测表面粗糙度和材料去除率。转动实验根据Taguchi的L9正交阵列进行。测量了用HSS工具加工C45钢时的表面粗糙度和材料去除率。切割速度,进料速率和切割深度被认为是加工参数。建立了依赖于回归模型的模型,并将从回归模型获得的结果与基于模糊逻辑和实验的结果进行比较。通过分析相关系数并通过比较实验结果来确定回归模型和模糊逻辑的有效性。回归模型使实验测量值更接近,而不是模糊逻辑。已经得出结论,基于回归的建模可用于预先预测表面粗糙度。

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