Multi-objective optimization of cortical bone machining using numerical and statistical approaches

被引:0
作者
Salman Pervaiz
Abhishek Subramaniam
Sathish Kannan
机构
[1] Rochester Institute of Technology - Dubai Campus,Department of Mechanical and Industrial Engineering
[2] American University of Sharjah,Department of Mechanical Engineering, School of Engineering
来源
International Journal on Interactive Design and Manufacturing (IJIDeM) | 2023年 / 17卷
关键词
Orthogonal machining; Cutting process; Orthogonal cutting; Cortical bone;
D O I
暂无
中图分类号
学科分类号
摘要
Cutting of bone is a common practice in the surgery to treat the fracture in bones. There is a need to conduct a detailed study to analyse the influence of traditional cutting parameters on the overall cutting performance of bone. The intricate and resource-intensive nature of bone machining has led researchers to seek more efficient tools to aid in the optimization process. Finite Element Method (FEM) simulations have emerged as a viable solution for such challenges. By combining FEM simulations with grey relational analysis (GRA), researchers can reduce the associated costs and improve the overall optimization process. The current study utilized the hybrid concept where finite element assisted orthogonal cutting simulations were performed on the cortical bone. Design of experiment was conducted using Taguchi orthogonal L09 experiments. The four controlling parameters were rake angle, edge radius, cutting speed and undeformed chip thickness. Output responses of forces, power, chip compression ratio and coefficient of friction were minimized, whereas shear angle was maximized. Finite element simulations provided the essential parameters such as deformed chip thickness and cutting forces, that were used to calculate the chip compression ratio, shear angle and total power in each condition. In addition, grey relational analysis (GRA) was conducted to get the meaning results of this work. It is rarely found in the literature that orthogonal cutting of cortical bone was studied with the above-mentioned techniques in combination. The optimal parameters for the optimized performance were rake angle of 20°, edge radius of 5 µm, cutting speed of 25 mm/s and undeformed chip thickness of 0.1 mm. The usage of the said optimal parameters results in a Grey Relational Grade improvement of 0.2828 in comparison to the referenced first experimental run. The percentage contribution of rake angle, undeformed chip thickness, cutting speed and edge radius is 79.58%, 17.18%, 2.33% and 0.90% respectively. The current study is helpful for the audience working in the biomedical and custom-made cutting tools manufacturing sectors.
引用
收藏
页码:1881 / 1894
页数:13
相关论文
共 80 条
  • [11] Pandey PM(2016)Optimization of process parameters for drilled hole quality characteristics during cortical bone drilling using Taguchi method J. Mech. Behav. Biomed. Mater. 62 355-365
  • [12] Mridha AR(2018)Parametric effect of vibrational drilling on osteonecrosis and comparative histopathology study with conventional drilling of cortical bone Proc. Inst. Mech. Eng. Part H J. Eng. Med. 232 975-986
  • [13] Gupta RK(2020)Experimental investigations and statistical modeling of cutting force and torque in rotary ultrasonic bone drilling of human cadaver bone Proc. Inst. Mech. Eng. Part H J. Eng. Med. 234 148-162
  • [14] Heydari H(2019)Experimental study of thrust force and torque for drilling cortical bone Ann. Biomed. Eng. 47 802-812
  • [15] Cheraghi Kazerooni N(2014)Experimental investigations and finite element simulation of cutting heat in vibrational and conventional drilling of cortical bone Med. Eng. Phys. 36 1408-1415
  • [16] Zolfaghari M(2022)The effect of interstitial fluid on the machining behaviour of cortical bone J. Mater. Process. Technol. 307 117697-743
  • [17] Ghoreishi M(2022)Bone abrasive machining: influence of tool geometry and cortical bone anisotropic structure on crack propagation J. Funct. Biomater. 46 738-431
  • [18] Tahmasbi V(2022)Influence of machining parameters on cutting and chip-formation process during cortical bone orthogonal machining Materials (Basel) 116 423-152
  • [19] Li C(2009)Finite element analysis of forces of plane cutting of cortical bone Comput. Mater. Sci. 134 142-93
  • [20] Li X(2014)The influence of anisotropy in numerical modeling of orthogonal cutting of cortical bone Compos. Struct. 55 80-592