Efficient Steady-State Computation for Wear of Multimaterial Composites

被引:8
|
作者
Feppon, Florian [1 ]
Sidebottom, Mark A. [2 ]
Michailidis, Georgios [3 ]
Krick, Brandon A. [2 ]
Vermaak, Natasha [2 ]
机构
[1] Ecole Polytech, Ctr Math Appl, Route Saclay, F-91128 Palaiseau, France
[2] Lehigh Univ, Dept Mech Engn & Mech, Bethlehem, PA 18015 USA
[3] Univ Grenoble, SIMaP, INPG, 1130 Rue Piscine, F-38402 St Martin Dheres, France
来源
JOURNAL OF TRIBOLOGY-TRANSACTIONS OF THE ASME | 2016年 / 138卷 / 03期
基金
美国国家科学基金会;
关键词
CONTACT PRESSURE EVOLUTION; FINITE-ELEMENT-ANALYSIS; STRUCTURAL OPTIMIZATION; SLIDING CONTACT; MILD WEAR; SIMULATION; MODEL; FRICTION; SHAPE; SURFACES;
D O I
10.1115/1.4031993
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Traditionally, iterative schemes have been used to predict evolving material profiles under abrasive wear. In this work, more efficient continuous formulations are presented for predicting the wear of tribological systems. Following previous work, the formulation is based on a two parameter elastic Pasternak foundation model. It is considered as a simplified framework to analyze the wear of multimaterial surfaces. It is shown that the evolving wear profile is also the solution of a parabolic partial differential equation (PDE). The wearing profile is proven to converge to a steady-state that propagates with constant wear rate. A relationship between this velocity and the inverse rule of mixtures or harmonic mean for composites is derived. For cases where only the final steady-state profile is of interest, it is shown that the steady-state profile can be accurately and directly determined by solving a simple elliptic differential system-thus avoiding iterative schemes altogether. Stability analysis is performed to identify conditions under which an iterative scheme can provide accurate predictions and several comparisons between iterative and the proposed formulation are made. Prospects of the new continuous wear formulation and steady-state characterization are discussed for advanced optimization, design, manufacturing, and control applications.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Efficient computation of thermoelastic instabilities in the presence of wear
    Graf, M.
    Ostermeyer, G. -P.
    WEAR, 2014, 312 (1-2) : 11 - 20
  • [22] Steady-state simulation of screw liquid chillers
    Fu, L
    Ding, GL
    Su, ZJ
    Zhao, GQ
    APPLIED THERMAL ENGINEERING, 2002, 22 (15) : 1731 - 1748
  • [23] Reliable and Efficient Procedure for Steady-State Analysis of Nonautonomous and Autonomous Systems
    Dobes, Josef
    Biolkova, Viera
    RADIOENGINEERING, 2012, 21 (01) : 374 - 385
  • [24] Improving Steady-State Identification
    Le Roux, Galo A. C.
    Santoro, Bruno Faccini
    Sotelo, Francisco F.
    Teissier, Mathieu
    Joulia, Xavier
    18TH EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING, 2008, 25 : 459 - 464
  • [25] Efficient determination and evaluation of steady-state thermal-mechanical variables generated by wire arc additive manufacturing and high pressure rolling
    Gornyakov, Valeriy
    Sun, Yongle
    Ding, Jialuo
    Williams, Stewart
    MODELLING AND SIMULATION IN MATERIALS SCIENCE AND ENGINEERING, 2022, 30 (01)
  • [26] Efficient model of evolution of wear in quasi-steady-state sliding contacts
    Lengiewicz, Jakub
    Stupkiewicz, Stanislaw
    WEAR, 2013, 303 (1-2) : 611 - 621
  • [27] An efficient analytical approach for steady-state upscaling of relative permeability and capillary pressure
    Liao, Qinzhuo
    Li, Gensheng
    Tian, Shouceng
    Song, Xianzhi
    Lei, Gang
    Liu, Xu
    Chen, Weiqing
    Patil, Shirish
    ENERGY, 2023, 282
  • [28] The steady-state cornering of a wheel with a reinforced tyre with slipping
    Kozhevnikov, I. F.
    ACTA MECHANICA, 2011, 217 (3-4) : 347 - 362
  • [29] Accelerated Steady-State Torque Computation for Induction Machines Using Parallel-In-Time Algorithms
    Bast, Denys
    Kulchytska-Ruchka, Iryna
    Schoeps, Sebastian
    Rain, Oliver
    IEEE TRANSACTIONS ON MAGNETICS, 2020, 56 (02)
  • [30] Simplified steady-state modeling for variable speed compressor
    Li, Wenhua
    APPLIED THERMAL ENGINEERING, 2013, 50 (01) : 318 - 326