Enhancement of tribological and thermo-mechanical properties of phenolic resin friction composites by improving interactions between elastomeric phase and matrix resin

被引:0
作者
Prosenjit Ghosh
Kinsuk Naskar
Narayan Chandra Das
机构
[1] Indian Institute of Technology,Rubber Technology Centre
来源
SN Applied Sciences | 2020年 / 2卷
关键词
Elastomeric phase; Friction composite; Wear; Thermal conductivity;
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中图分类号
学科分类号
摘要
New elastomer-modified brake friction composites with the identical composition, but differing in the type of rubber, were developed by altering polar/non-polar elastomeric phases into the phenolic resin matrix. Effect of dispersion and interaction of the polar/non-polar rubbers with the matrix resin on dry sliding wear characteristics of the friction composites was investigated using a laboratory-scale pin-on-disc tribometer. The composites were prepared by hot mixing followed by compression molding and post-curing at a high temperature. Coefficient of friction (COF) and specific wear rate of the composites sliding against a cast-iron disc were measured and analyzed. Polar acrylonitrile-butadiene rubber (NBR, both powder, and bale rubber), and non-polar styrene-butadiene rubber (SBR) and ethylene-propylene-diene monomer (EPDM) were used with the phenolic resin where rubber islands and its polarity played the key role in delayed stress dissipation, while the hard matrix phase contributed to the intrinsic strength of the composites. This work describes how the distribution and interaction of polar and non-polar rubbers with the matrix resin influence the performance of brake friction composites. NBR (powder)-phenolic composite showed the highest stable average COF of 0.52 as compared to 0.36 for EPDM-based composite. NBR (powder)-based composite also exhibited ~1.5 times better specific wear rate (4.9 × 10−3 mm3 N−1 m−1) than EPDM-based composite (7.2 × 10−3 mm3 N−1 m−1). However, EPDM rubber-based composite showed a significant enhancement in thermal conductivity (0.43 W/m K). Morphological analyses revealed that the dispersion of rubber phase in phenolic matrix played a significant role in transforming the wear mechanism from abrasive to adhesive.
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  • [1] Xiao Y(2018)Mechanical and tribological behaviors of copper metal matrix composites for brake pads used in high-speed trains Tribol Int 119 585-592
  • [2] Zhang Z(2018)Effects of the shapes and dimensions of mullite whisker on the friction and wear behaviors of resin-based friction materials Wear 406 118-125
  • [3] Yao P(2017)Influence of a novel hardener p-toluene sulfonic acid on mechanical and wear response of phenolic-based friction materials Tribol Trans 60 770-780
  • [4] Fan K(2018)Selection of brake friction materials using hybrid analytical hierarchy process and vise Kriterijumska Optimizacija Kompromisno Resenje approach Polym Compos 39 1655-1662
  • [5] Zhou H(2016)Formulation optimization of friction material with golden section approach Tribol Trans 59 28-32
  • [6] Gong T(2017)Influence of nano-potassium titanate particles on the performance of NAO brake-pads Wear 376 727-737
  • [7] Zhao L(2010)An experimental study on the effects of manufacturing parameters on the tribological properties of brake lining materials Wear 268 1524-1532
  • [8] Deng M(2015)Effect of several solid lubricants on the mechanical and tribological properties of phenolic resin-based composites Polym Compos 36 2203-2211
  • [9] Ji Z(2008)Effects of rubber curing ingredients and phenolic-resin on mechanical, thermal, and morphological characteristics of rubber/phenolic-resin blends J Appl Polym Sci 108 3808-3821
  • [10] Luo W(2010)Tribological characteristics of rubber-based friction materials: effects of steel wool and aramid pulp Tribol Lett 41 325-336