Surface roughness and cutting forces modeling for optimization of machining condition in finish hard turning of AISI 52100 steel

被引:0
作者
Mohamed Walid Azizi
Salim Belhadi
Mohamed Athmane Yallese
Tarek Mabrouki
Jean-François Rigal
机构
[1] University of Guelma,Mechanic and Structures Research Laboratory (LMS)
[2] University of Lyon,CNRS, INSA
来源
Journal of Mechanical Science and Technology | 2012年 / 26卷
关键词
Hard turning; Optimization; Empirical model; Surface roughness; Cutting forces;
D O I
暂无
中图分类号
学科分类号
摘要
An experimental investigation was conducted to analyze the effect of cutting parameters (cutting speed, feed rate and depth of cut) and workpiece hardness on surface roughness and cutting force components. The finish hard turning of AISI 52100 steel with coated Al2O3 + TiC mixed ceramic cutting tools was studied. The planning of experiment were based on Taguchi’s L27 orthogonal array. The response table and analysis of variance (ANOVA) have allowed to check the validity of linear regression model and to determine the significant parameters affecting the surface roughness and cutting forces. The statistical analysis reveals that the feed rate, workpiece hardness and cutting speed have significant effects in reducing the surface roughness; whereas the depth of cut, workpiece hardness and feed rate are observed to have a statistically significant impact on the cutting force components than the cutting speed. Consequently, empirical models were developed to correlate the cutting parameters and workpiece hardness with surface roughness and cutting forces. The optimum machining conditions to produce the lowest surface roughness with minimal cutting force components under these experimental conditions were searched using desirability function approach for multiple response factors optimization. Finally, confirmation experiments were performed to verify the pertinence of the developed empirical models.
引用
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页码:4105 / 4114
页数:9
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共 65 条
[11]  
Yan F. G.(2009)Hard machining of hardened bearing steel using cubic boron nitride tool J. Mater. Process. Technol. 209 1092-1104
[12]  
Pavel R.(2000)Cutting of hardened steel Ann. CIRP. 49 547-566
[13]  
Marinescu I.(2011)Modeling and optimization of hard turning of X38CrMoV5-1 steel with CBN tool: Machining parameters effects on flank wear and surface roughness Journal of Mechanical Science and Technology 25 2843-2851
[14]  
Deis M.(1984)Machining of hard materials Ann. CIRP. 33 417-428
[15]  
Pillar J.(2009)Machinability investigations in hard turning of AISI D2 cold work tool steel with conventional and wiper ceramic inserts Int. J. Refract. Metals. Hard. Mater. 27 754-763
[16]  
Özel T.(2010)Study of cutting speed on surface roughness and chip formation when machining nickelbased alloy Journal of Mechanical Science and Technology 24 1083-1090
[17]  
Hsu T. K.(2004)Tool nose radius effects on finish hard turning J. Mater. Process. Technol. 148 259-268
[18]  
Zeren E.(2010)Surface roughness and cutting force prediction in MQL and wet turning process of AISI 1045 using design of experiments Journal of Mechanical Science and Technology 24 1669-1677
[19]  
Luo S. Y.(2010)Optimization of EDM process for multiple performance characteristics using Taguchi method and Grey relational analysis Journal of Mechanical Science and Technology 24 1083-1090
[20]  
Liao Y. S.(1999)Effect of cutting edge geometry and workpiece hardness on surface generation in the finish hard turning of AISI 52100 steel J. Mater. Process. Technol. 94 216-226