Tribological behaviour and statistical experimental design of sintered iron-copper based composites

Abstract The sintered iron–copper based composites for automotive brake pads have a complex composite composition and should have good physical, mechanical and tribological characteristics. In this paper, we obtained frictional composites by Powder Metallurgy (P/M) technique and we have characterized them by microstructural and tribological point of view. The morphology of raw powders was determined by SEM and the surfaces of obtained sintered friction materials were analyzed by ESEM, EDS elemental and compo-images analyses. One lot of samples were tested on a “pin-on-disc” type wear machine under dry sliding conditions, at applied load between 3.5 and 11.5 × 10 −1  MPa and 12.5 and 16.9 m/s relative speed in braking point at constant temperature. The other lot of samples were tested on an inertial test stand according to a methodology simulating the real conditions of dry friction, at a contact pressure of 2.5–3 MPa, at 300–1200 rpm. The most important characteristics required for sintered friction materials are high and stable friction coefficient during breaking and also, for high durability in service, must have: low wear, high corrosion resistance, high thermal conductivity, mechanical resistance and thermal stability at elevated temperature. Because of the tribological characteristics importance (wear rate and friction coefficient) of sintered iron–copper based composites, we predicted the tribological behaviour through statistical analysis. For the first lot of samples, the response variables Y i (represented by the wear rate and friction coefficient) have been correlated with x 1 and x 2 (the code value of applied load and relative speed in braking points, respectively) using a linear factorial design approach. We obtained brake friction materials with improved wear resistance characteristics and high and stable friction coefficients. It has been shown, through experimental data and obtained linear regression equations, that the sintered composites wear rate increases with increasing applied load and relative speed, but in the same conditions, the frictional coefficients slowly decrease.

[1]  H. Zaidi,et al.  Thermal tribological behaviour of composite carbon metal/steel brake , 1999 .

[2]  Jie Chen,et al.  Effects of sintering pressure and temperature on microstructure and tribological characteristic of Cu-based aircraft brake material , 2007 .

[3]  Staffan Jacobson,et al.  Surface characterisation of brake pads after running under silent and squealing conditions , 1999 .

[4]  Pradeep K. Rohatgi,et al.  Tribological properties of Al alloy particle composites , 1987 .

[5]  Rena Hecht Basch,et al.  The effect of metal fibers on the friction performance of automotive brake friction materials , 2004 .

[6]  Peter J. Blau,et al.  Characteristics of wear particles produced during friction tests of conventional and unconventional disc brake materials , 2003 .

[7]  Y. Şahin Wear behaviour of aluminium alloy and its composites reinforced by SiC particles using statistical analysis , 2003 .

[8]  K. Sun,et al.  Synthesis of anodizing composite films containing superfine Al2O3 and PTFE particles on Al alloys , 2010 .

[9]  Gwidon Stachowiak,et al.  Review of automotive brake friction materials , 2004 .

[10]  H. Zaidi,et al.  Tribological behaviour of graphite/graphite and graphite/copper couples in sliding electrical contact: influence on the contact electric field on the surface passivation , 1993 .

[11]  E. Andrei,et al.  Chemical binding and structure of carbonic thin films with advanced properties studied by electron spectroscopy , 2007 .

[12]  Yaming Wang,et al.  Tribological behavior of microarc oxidation coatings formed on titanium alloys against steel in dry and solid lubrication sliding , 2006 .