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Hard turning: Parametric optimization using genetic algorithm for rough/finish machining and study of surface morphology

机译:硬车削:使用遗传算法对粗加工/精加工进行参数优化,并研究表面形态

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摘要

The present study reports the effect of different process parameters on machining forces, surface roughness, dimensional deviation and material removal rate during hard turning of EN31, SAE8620 and EN9 tool steels. Feed rate followed by hardness, cutting speed and nose radius-depth of cut significantly affected machining forces whereas feed rate had the largest effect on surface roughness. The four responses were subsequently optimized for both rough and finish machining using genetic algorithm to determine the optimum combination of input parameters. Machined surfaces were subsequently analyzed using XRD followed by analysis of grain size and crystallite size of the machined samples and SEM analysis. Higher chromium content was observed at the machined surface as manganese dissolves in cementite and may replace iron atoms in the cementite lattice after machining. High heat is generated when machining at higher cutting speeds causing severe strain. The depth of the white layer decreases with increasing tool nose radius and increases at larger feeds because of greater heat generation. The SEM observations showed a smooth pattern with very low undulations with almost no crack damage.
机译:本研究报告了在EN31,SAE8620和EN9工具钢硬车削过程中不同工艺参数对机械加工力,表面粗糙度,尺寸偏差和材料去除率的影响。进给速度,硬度,切削速度和切削的刀尖半径深度会显着影响加工力,而进给速度对表面粗糙度的影响最大。随后使用遗传算法针对粗加工和精加工优化了四个响应,以确定输入参数的最佳组合。随后使用XRD分析加工的表面,然后分析加工样品的晶粒尺寸和微晶尺寸以及SEM分析。由于锰溶解在渗碳体中,并且在渗碳后可能替代渗碳体晶格中的铁原子,因此在加工表面观察到较高的铬含量。以较高的切削速度进行加工时会产生高热量,从而导致严重的应变。白层的深度随着刀尖半径的增加而减小,而在进给量较大时,由于产生热量的增加而增加。 SEM观察显示出具有非常低的起伏的光滑图案,几乎没有裂纹损坏。

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