마찰 에너지 해석을 통한 러버 트랙(Rubber Track)의 마모율 예측

Prediction of Wear Rate for Rubber Track by Using Frictional Energy Analysis

  • 강종진 (동일고무벨트 언더캐리지사업팀) ;
  • 조진래 (마이다스아이티 기술연구소) ;
  • 정의봉 (부산대학교 기계공학부)
  • Kang, Jong-Jin (Uudercarriage Business Team, Dongil Rubber Belt Co. Ltd.) ;
  • Cho, Jin-Rae (Research & Development Institute of Midas IT) ;
  • Jeong, Weui-Bong (School of Mechanical Engineering, Pusan National University)
  • 투고 : 2011.01.26
  • 심사 : 2011.03.30
  • 발행 : 2011.09.01

초록

The wear of rubber track being in contact with the road surface is an important subject because it decreases the traction performance and the operating efficiency of tracked vehicle. For the above reasons, many attempts have been made to quantitatively calculate the rubber track. However, it depends on the experimental methods which are highly time- and cost-consuming. Therefore, the numerical simulation approach is highly desirable, but it needs to model the complex geometry and the material behavior in details as well as the interaction with the road surface. In this study, the rubber track and its material behavior are elaborately modeled since these factors are very important in the prediction of the wear rate of the rubber track. Accordingly to the studies on the rubber wear by previous investigations, it has been found that the wear is greatly influenced by the frictional energy. The frictional energy of rubber track is computed by utilizing the 3D finite element analysis of the rubber track, and the wear rate is evaluated making use of the frictional energy and a wear model.

키워드

참고문헌

  1. H. L. M. du Plessis and T. Yu, "Modelling the Traction of a Prototype Track Based on Soil-rubber Friction and Adhesion," Journal of Terramechanics, Vol.43, pp.487-504, 2006. https://doi.org/10.1016/j.jterra.2005.07.002
  2. J. H. Choi, J. R. Cho, G. J. Kim and J. S. Woo, "Tire Wear Simulation Using Finite Element Method," Spring Conference Proceedings, KSAE, pp.79-84, 2005.
  3. S. C. Tang, "Quasi-static Analysis of Sheet Metal Forming Process-a Design Evaluation Tool," J. Mater. Process. Technol., Vol.45, pp.261-266, 1994. https://doi.org/10.1016/0924-0136(94)90350-6
  4. J. S. Sun, K. H. Lee and H. P. Lee, "Comparison of Implicit and Explicit Finite Element Methods for Dynamic Problems," Journal of Material Processing Technology, Vol.105, pp.110-118, 2000. https://doi.org/10.1016/S0924-0136(00)00580-X
  5. MSC Software, MSC.Marc User's Manual Version 2007r1, 2007.
  6. A. N. Gent and C. Pulford, "Mechanisms of Rubber Abrasion," J. Appl. Polym. Sci., Vol.28, pp.943-960, 1983. https://doi.org/10.1002/app.1983.070280304
  7. K. W. Kim, H. S. Jeong, J. R. Cho and Y. S. Yang, "Finite Element Analysis on Residual Aligning Torque and Frictional Energy of a Tire with Detailed Tread Blocks," Transactions of KSAE, Vol.12, No.4, pp.173-180, 2004.
  8. J. R. Cho, J. H. Choi, W. S. Yoo, G .J. Kim and J. S. Yoo, "Estimation of Dry Rod Braking Distance Considering Frictional Energy of Patterned Tires," Finite Elements in Analysis and Design, Vol.42, pp.1248-1257, 2006. https://doi.org/10.1016/j.finel.2006.06.005