Evaluation of the cutting performance of PVD, CVD and MTCVD carbide inserts in dry turning of AISI 4140 steel using RSM-based NAMDE optimization

被引:0
作者
Billel Hamadi
Mohamed Athmane Yallese
Lakhdar Boulanouar
Abderazek Hammoudi
Mourad Nouioua
机构
[1] Badji Mokhtar -Annaba University,Advanced Technologies in Mechanical Production Research Laboratory (LRTAPM)
[2] Mechanical Engineering Department,undefined
[3] Mechanics and Structures Research Laboratory (LMS),undefined
[4] Mechanics Research Center (CRM),undefined
来源
Journal of the Brazilian Society of Mechanical Sciences and Engineering | 2022年 / 44卷
关键词
Turning; PVD/CVD/MTCVD-coated carbides; AISI 4140 Steel; Cutting performance; RSM; NAMDE;
D O I
暂无
中图分类号
学科分类号
摘要
An experimental study is carried out to investigate the performance of the cutting tool regarding the insert wear, surface roughness, cutting forces, cutting power and material removal rate of three coated carbides GC2015 (TiCN-Al2O3-TiN), GC4215 (Al2O3-Ti(C,N)) and GC1015 (TiN) during the dry turning of AISI4140 steel. For this purpose, a Taguchi design (L9) was adopted for the planning of the experiments, the effects of cutting parameters on the cutting force components were studied using analysis of variance (ANOVA), and the response surface methodology was used for mathematical modeling, with which linear mathematical models were developed for forecasting of Fa, Fr, Fc, Pc and MRR as a function of cutting parameters. Then, a new adaptive mixed differential evolution algorithm (NAMDE) has been implemented for multi-objective optimization which allows manufacturers to enhance the production performances of the machined parts. Furthermore, in order to characterize and quantify the flank wear and surface roughness of the tested tools, another machining experiment was performed for 5 min of turning under a depth of 0.5 mm, a feed rate of 0.08 mm/rev and a cutting speed of 350 m/min. The wear results led to a ratio (VB-GC4215/VB-GC2015) of 2.03 and (VB-GC1015/VB-GC2015) of 4.43, thus demonstrating the efficiency of the cutting insert GC2015. Moreover, SEM analysis shows the main wear mechanisms represented by abrasion, adhesion and chipping. Also, it was found that the minimum values for the surface roughness were achieved by the CVD cutting insert.
引用
收藏
相关论文
共 236 条
[51]  
Yallese MA(2015)On the application of response surface methodology for predicting and optimizing surface roughness and cutting forces in hard turning by PVD coated insert Int J Ind Eng Comput 209 1092-2244
[52]  
Aouici H(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 169 388-547
[53]  
Mabrouki T(2009)Hard machining of hardened bearing steel using cubic boron nitride tool J Mater Process Technol 87 2221-198
[54]  
Rigal J-F(2005)Hard turning: AISI 4340 high strength low alloy steel and AISI D2 cold work tool steel J Mater Process Technol 13 542-329
[55]  
Tebassi H(2016)Performance comparison of wiper and conventional ceramic inserts in hard turning of AISI 4140 steel: analysis of machining forces and flank wear Int J Adv Manufact Technol 189 192-2073
[56]  
Yallese MA(2004)Built-up edge effect on tool wear when turning steels at low cutting speed J Mater Eng Perform 80 285-657
[57]  
Khettabi R(2007)Modelling of surface finish and tool flank wear in turning of AISI D2 steel with ceramic wiper inserts J Mater Process Technol 90 2063-undefined
[58]  
Belhadi S(2019)Mechanical engineering design optimisation using novel adaptive differential evolution algorithm Int J Veh Des 10 646-undefined
[59]  
Meddour I(2017)Adaptive mixed differential evolution algorithm for bi-objective tooth profile spur gear optimization Int J Adv Manufact Technol undefined undefined-undefined
[60]  
Girardin F(2006)Self-adapting control parameters in differential evolution: A comparative study on numerical benchmark problems IEEE trans evolut comput undefined undefined-undefined