Analysis and Optimization of Machining Hardened Steel AISI 4140 with Self-Propelled Rotary Tools

被引:7
|
作者
Ahmed, Waleed [1 ]
Hegab, Hussien [1 ]
Mohany, Atef [2 ]
Kishawy, Hossam [1 ]
机构
[1] Ontario Tech Univ, Machining Res Lab, Oshawa, ON L1G 0C5, Canada
[2] Ontario Tech Univ, Fluid Struct Interact Lab, Oshawa, ON L1G 0C5, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
modeling; machining; optimization; rotary tools; SURFACE-ROUGHNESS; PREDICTION; TEMPERATURE; PERFORMANCE;
D O I
10.3390/ma14206106
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
It is necessary to improve the machinability of difficult-to-cut materials such as hardened steel, nickel-based alloys, and titanium alloys as these materials offer superior properties such as chemical stability, corrosion resistance, and high strength to weight ratio, making them indispensable for many applications. Machining with self-propelled rotary tools (SPRT) is considered one of the promising techniques used to provide proper tool life even under dry conditions. In this work, an attempt has been performed to analyze, model, and optimize the machining process of AISI 4140 hardened steel using self-propelled rotary tools. Experimental analysis has been offered to (a) compare the fixed and rotary tools performance and (b) study the effect of the inclination angle on the surface quality and tool wear. Moreover, the current study implemented some artificial intelligence-based approaches (i.e., genetic programming and NSGA-II) to model and optimize the machining process of AISI 4140 hardened steel with self-propelled rotary tools. The feed rate, cutting velocity, and inclination angle were the selected design variables, while the tool wear, surface roughness, and material removal rate (MRR) were the studied outputs. The optimal surface roughness was obtained at a cutting speed of 240 m/min, an inclination angle of 20 degrees, and a feed rate of 0.1 mm/rev. In addition, the minimum flank tool wear was observed at a cutting speed of 70 m/min, an inclination angle of 10 degrees, and a feed rate of 0.15 mm/rev. Moreover, different weights have been assigned for the three studied outputs to offer different optimized solutions based on the designer's interest (equal-weighted, finishing, and productivity scenarios). It should be stated that the findings of the current work offer valuable recommendations to select the optimized cutting conditions when machining hardened steel AISI 4140 within the selected ranges.
引用
收藏
页数:15
相关论文
共 50 条
  • [31] Comparison between mixed ceramic and reinforced ceramic tools in terms of cutting force components modelling and optimization when machining hardened steel AISI 4140 (60 HRC)
    Fnides, B.
    Aouici, H.
    Elbah, M.
    Boutabba, S.
    Boulanouar, L.
    [J]. MECHANICS & INDUSTRY, 2015, 16 (06)
  • [32] Utilization Method of Electrical Steel Sheets on Stator of Self-propelled Rotary Actuator
    Soda, Naoya
    Enokizono, Masato
    [J]. 2016 XXII INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES (ICEM), 2016, : 918 - 923
  • [33] Force prediction in cutting operations with self-propelled rotary tools considering bearing friction
    Suzuki, Norikazu
    Suzuki, Toru
    An, Ran
    Ukai, Kota
    Shamoto, Eiji
    Hasegawa, Yu
    Horiike, Nobukazu
    [J]. 6TH CIRP INTERNATIONAL CONFERENCE ON HIGH PERFORMANCE CUTTING (HPC2014), 2014, 14 : 125 - 129
  • [34] Tool wear and chip formation during hard turning with self-propelled rotary tools
    Kishawy, HA
    Wilcox, J
    [J]. INTERNATIONAL JOURNAL OF MACHINE TOOLS & MANUFACTURE, 2003, 43 (04): : 433 - 439
  • [35] Experiments on cutting of SiC whisker reinforced aluminum composite with self-propelled rotary tools
    Wang, Dazhen
    Feng, Peifeng
    Li, Bo
    Liu, Huaming
    [J]. Nongye Jixie Xuebao/Transactions of the Chinese Society of Agricultural Machinery, 2010, 41 (01): : 221 - 225
  • [36] Improvements in the machining of aero-engine alloys using self-propelled rotary tooling technique
    Ezugwu, E. O.
    [J]. JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2007, 185 (1-3) : 60 - 71
  • [37] Wear evaluation of a self-propelled rotary tool when machining titanium alloy IMI 318
    Ezugwu, EO
    Olajire, KA
    Wang, ZM
    [J]. PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART B-JOURNAL OF ENGINEERING MANUFACTURE, 2002, 216 (06) : 891 - 897
  • [38] CUTTING TEMPERATURE AND FORCES IN MACHINING OF HIGH-PERFORMANCE MATERIALS WITH SELF-PROPELLED ROTARY TOOL
    CHEN, P
    [J]. JSME INTERNATIONAL JOURNAL SERIES III-VIBRATION CONTROL ENGINEERING ENGINEERING FOR INDUSTRY, 1992, 35 (01): : 180 - 185
  • [39] Optimization of cutting parameters with respect to roughness for machining of hardened AISI 1040 steel
    Sahinoglu, Abidin
    Rafighi, Mohammad
    [J]. MATERIALS TESTING, 2020, 62 (01) : 85 - 95
  • [40] Optimization of Surface Quality and Power Consumption in Machining Hardened AISI 4340 Steel
    Ochengo, Dennis
    Liang, Li
    Wei, Zhao
    Ning, He
    [J]. ADVANCES IN MATERIALS SCIENCE AND ENGINEERING, 2022, 2022