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Application of grey relational analysis based on Taguchi method for optimizing machining parameters in hard turning of high chrome cast iron

机译:基于Taguchi方法的灰关联分析在优化高铬铸铁硬切削工艺参数中的应用。

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摘要

High chrome white cast iron is particularly preferred in the production of machine parts requiring high wear resistance.Although the amount of chrome in these materials provides high wear and corrosion resistances,it makes their machinability difficult.This study presents an application of the grey relational analysis based on the Taguchi method in order to optimize chrome ratio,cutting speed,feed rate,and cutting depth for the resultant cutting force (FR) and surface roughness (Ra) when hard turning high chrome cast iron with a cubic boron nitride (CBN) insert.The effect levels of machining parameters on FR and Ra were examined by an analysis of variance (ANOVA).A grey relational grade (GRG) was calculated to simultaneously minimize FR and Ra.The ANOVA results based on GRG indicated that the feed rate,followed by the cutting depth,was the main parameter and contributed to responses.Optimal levels of parameters were found when the chrome ratio,cutting speed,feed rate,and cutting depth were 12%,100 m/min,0.05 mrn/r,and 0.1 mm,respectively,based on the multiresponse optimization results obtained by considering the maximum signal to noise (S/N) ratio of GRG.Confirmation results were verified by calculating the confidence level within the interval width.
机译:高铬白口铸铁在要求高耐磨性的机械零件的生产中是特别优选的。尽管这些材料中铬的含量提供了高耐磨性和耐腐蚀性,但使其难于加工。本研究提出了灰色关联分析的应用基于Taguchi方法,以优化铬比,切削速度,进给速度和切削深度,从而在用立方氮化硼(CBN)硬车削高铬铸铁时产生的切削力(FR)和表面粗糙度(Ra)通过方差分析(ANOVA)检验了加工参数对FR和Ra的影响水平。计算了灰色关联等级(GRG)以同时最小化FR和Ra。基于GRG的ANOVA结果表明进给速度铬含量,切削速度,进给速度和切削深度是确定参数的最佳水平,其次是切削深度。根据GRG的最大信噪比(S / N)获得的多响应优化结果,分别为12%,100 m / min,0.05 mrn / r和0.1 mm。区间宽度内的置信度。

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  • 来源
    《先进制造进展(英文版)》 |2018年第4期|419-429|共11页
  • 作者单位

    Department of Manufacturing Engineering, Karabük University, Karabük 078050, Turkey;

    Department of Mechanical Engineering, Karabük University,Karabük 078050, Turkey;

    Department of Manufacturing Engineering, Karabük University, Karabük 078050, Turkey;

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