Journal of Jilin University(Engineering and Technology Edition) ›› 2019, Vol. 49 ›› Issue (5): 1567-1574.doi: 10.13229/j.cnki.jdxbgxb20180623

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Numerical analysis of single crystal Fe with abrasive grain micro-cutting based on molecular dynamics

Jun-ye LI1,2(),Yang LIU1,Hui LU1,Wen-qing MENG1,Zhao-jun YANG2,Xin-ming ZHANG1()   

  1. 1. Ministry of Education Key Laboratory for Cross-Scale Micro and Nano Manufacturing, Changchun University of Science and Technology, Changchun 130022, China
    2. School of Mechanical and Aerospace Engineering, Jilin University, Changchun 130022, China
  • Received:2018-06-13 Online:2019-09-01 Published:2019-09-11
  • Contact: Xin-ming ZHANG E-mail:ljy@cust.edu.cn;zxm@cust.edu.cn

Abstract:

In order to explore the mechanism of workpiece material removal during abrasive flow machining, the molecular dynamics method was used to simulate the machining process that SiC particles micro-cut single crystal Fe. The microscopic mechanism of action that affects the cutting force variation and the reasons for the continuous fluctuation of cutting force in the process are studied. The internal reasons of physical change of workpiece material and the working law of abrasive grains on workpiece are revealed under the micro-cutting process. Through the analysis of atomic displacement, it can be seen that the plastic deformation of the material in the micro-cutting process is mainly caused by the slip region generated in the sliding surface of the crystal lattice to form dislocations, and the atoms move along dislocation lines. At the same time, the accumulation of atoms and the mechanism of chip formation are discussed. The polyhedron template matching method was used to analyze the arrangement of workpiece atoms in the micro-cutting process, and the variation of the lattice structure in the workpiece material was discussed. The research can provide theoretical basis and technical support for processing single crystal Fe with abrasive flow machining.

Key words: mechanical design, molecular dynamics, micro-cutting, single crystal Fe, atomic displacement, crystal structure, abrasive flow

CLC Number: 

  • TG501

Fig.1

Molecular dynamics simulation model of micro-cutting process"

Fig.2

Forces of SiC grains in different directions"

Fig.3

Energy change curve of workpiece atoms"

Fig.4

Calibration of atomic displacement on surface of workpiece XOY"

Fig.5

Calibration of atomic displacement on surface of workpiece YOZ"

Fig.6

Surface profile of workpiece"

Fig.7

Structure of workpiece cutting layer in micro-cutting process"

1 李俊烨, 乔泽民, 杨兆军, 等. 介观尺度下磨料浓度对磨粒流加工质量的影响[J]. 吉林大学学报: 工学版, 2017, 47(3): 837-843.
LiJun-ye, QiaoZe-min, YangZhao-jun, et al. Influence of abrasive concentration on processing quality of abrasive flow in mesoscopic scale[J]. Journal of Jilin University (Engineering and Technology Edition), 2017, 47(3): 837-843.
2 焦佳能, 费群星, 白凤民, 等. 钛合金表面磨粒流加工工艺研究[J]. 金刚石与磨料磨具工程, 2010, 30(1): 42-45.
JiaoJia-neng, FeiQun-xing, BaiFeng-min, et al. Surface finishing of titanium alloy component by abrasive flow machining[J]. Diamond and Abrasives Engineering, 2010, 30(1): 42-45.
3 丁金福, 刘润之, 张克华, 等. 磨粒流精密光整加工的微切削机理[J]. 光学精密工程, 2014, 22(12): 3324-3331.
DingJin-fu, LiuRun-zhi, ZhangKe-hua, et al. Micro cutting mechanism of abrasive flow precision machining[J]. Optics and Precision Engineering, 2014, 22(12): 3324-3331.
4 李俊烨, 胡敬磊, 杨兆军, 等. 离散相磨粒粒径对磨粒流研抛共轨管质量的影响[J]. 吉林大学学报: 工学版, 2018, 48(2): 492-499.
LiJun-ye, HuJing-lei, YangZhao-jun, et al. Effect on the quality of abrasive flow polishing the common rail pipe in size of discrete phase abrasive particle[J]. Journal of Jilin University (Engineering and Technology Edition), 2018, 48(2): 492-499.
5 VenkateshG, SharmaA K, KumarP. On ultrasonic assisted abrasive flow finishing of bevel gears[J]. International Journal of Machine Tools & Manufacture, 2015, 89: 29-38.
6 李俊烨, 董坤, 王兴华, 等. 颗粒微切削表面创成的分子动力学仿真研究[J]. 机械工程学报, 2016, 52(17): 94-104.
LiJun-ye, DongKun, WangXing-hua, et al. Molecular dynamics simulation research into generative mechanism of particles micro-cutting surface[J]. Journal of Mechanical Engineering, 2016, 52(17): 94-104.
7 GoelS, KovalchenkoA, StukowskiA, et al. Influence of microstructure on the cutting behaviour of silicon[J]. Acta Materialia, 2015, 105: 464-478.
8 LiJ Y, MengW Q, DongK, et al. Study of effect of impacting direction on abrasive nanometric cutting process with molecular dynamics[J]. Nanoscale Research Letters, 2018, 13(1): 1-14.
9 WangQ, BaiQ, ChenJ, et al. Influence of cutting parameters on the depth of subsurface deformed layer in nano-cutting process of single crystal copper[J]. Nanoscale Research Letters, 2015, 10(1): 1-8.
10 周晓勤, 朱志伟, 罗丹, 等. 线性改变切削深度对单晶铜纳米切削的影响[J]. 吉林大学学报: 工学版, 2012, 42(1): 109-115.
ZhouXiao-qin, ZhuZhi-wei, LuoDan, et al. Influence of linearly varying cutting depth on nanocutting of monocrystalline copper[J]. Journal of Jilin University (Engineering and Technology Edition), 2012, 42(1): 109-115.
11 DawM S, BaskesM I. Embedded-atom method: derivation and application to impurities, surfaces, and other defects in metals[J]. Physical Review B, 1984, 29(12): 6443-6453.
12 GirifalcoL A, WeizerV G. Application of the morse potential function to cubic metals[J]. Physical Review, 1959, 114(3): 687-690.
13 TersoffJ. Modeling solid-state chemistry: interatomic potentials for multicomponent systems[J]. Physical Review B, 1989, 39(8): 5566-5568.
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