On the role of copper in brake friction materials

被引:157
作者
Oesterle, W. [2 ]
Prietzel, C. [2 ]
Kloss, H. [2 ]
Dmitriev, A. I. [1 ]
机构
[1] SB RAS, Inst Strength Phys & Mat Sci, Tomsk 634021, Russia
[2] Fed Inst Mat Res & Testing, D-12200 Berlin, Germany
关键词
Friction material; Friction layer; Copper macro-particle; Copper nano-particle; NUMERICAL-SIMULATION; LAYER FORMATION; DEFORMATION; WEAR; CONTACT; FILMS;
D O I
10.1016/j.triboint.2010.08.005
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Copper is a major ingredient in friction materials used for automotive braking. The purpose of this study was to find out how copper contributes to good brake performance properties in addition to providing good thermal conductivity. Microstructural investigations of copper chips at the surfaces of brake pads revealed a zone of severe plastic deformation which provides high hardness, but there is also evidence of recrystallized copper nano-particles which are incorporated into friction layers as soft ingredient once detached from the pad surface. Thus copper seems to play a dual role, firstly as reinforcing element of the brake pad providing primary contact sites, and secondly as solid lubricant by contributing to the formation of a layer of granular material providing velocity accommodation between the rotating disc and fixed pad. Confirmation for this hypothesis was obtained by modelling contact sites on the nanometre scale with the method of movable cellular automata. Results show both, the similarity of steel fibres and copper macro-particles in respect to providing primary contact sites, as well as similar sliding behaviours of friction layers containing either copper or graphite as soft inclusions. Furthermore, it is shown that not only material properties, but also the concentration of solid lubricant particles in the friction layers, determine conditions for friction force stabilization and smooth sliding behaviour. (C) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:2317 / 2326
页数:10
相关论文
共 37 条
[1]   Optimization of brass contents for best combination of tribo-performance and thermal conductivity of non-asbestos organic (NAO) friction composites [J].
Bijwe, Jayashree ;
Kumar, Mukesh ;
Gurunath, P. V. ;
Desplanques, Yannick ;
Degallaix, G'erard .
WEAR, 2008, 265 (5-6) :699-712
[2]   Work hardening of ultrafine-grained copper with nanoscale twins [J].
Chen, X. H. ;
Lu, L. .
SCRIPTA MATERIALIA, 2007, 57 (02) :133-136
[3]   DISCRETE NUMERICAL-MODEL FOR GRANULAR ASSEMBLIES [J].
CUNDALL, PA ;
STRACK, ODL .
GEOTECHNIQUE, 1979, 29 (01) :47-65
[4]   Numerical simulation of typical contact situations of brake friction materials [J].
Dmitriev, A. I. ;
Oesterle, W. ;
Kloss, H. .
TRIBOLOGY INTERNATIONAL, 2008, 41 (01) :1-8
[5]   Modeling of brake pad-disc interface with emphasis to dynamics and deformation of structures [J].
Dmitriev, A. I. ;
Oesterle, W. .
TRIBOLOGY INTERNATIONAL, 2010, 43 (04) :719-727
[6]   Numerical Simulation of Mechanically Mixed Layer Formation at Local Contacts of an Automotive Brake System [J].
Dmitriev, Andrey I. ;
Osterle, Werner ;
Kloss, Heinz .
TRIBOLOGY TRANSACTIONS, 2008, 51 (06) :810-816
[7]   The effects of sliding velocity and sliding time on nanocrystalline tribolayer development and properties in copper [J].
Emge, A. ;
Karthikeyan, S. ;
Rigney, D. A. .
WEAR, 2009, 267 (1-4) :562-567
[8]   On the nature of tribological contact in automotive brakes [J].
Eriksson, M ;
Bergman, F ;
Jacobson, S .
WEAR, 2002, 252 (1-2) :26-36
[9]  
ESCHELBACH R, 1969, TASCHENBUCH METALLIS, P258
[10]   On friction layer formation in polymer matrix composite materials for brake applications [J].
Filip, P ;
Weiss, Z ;
Rafaja, D .
WEAR, 2002, 252 (3-4) :189-198