Synergistic effects of iron and hexagonal-Boron Nitride additions in copper-based composites for braking application

dc.contributor.authorCadambi, S.
dc.contributor.authorK, K.
dc.contributor.authorLamture, N.
dc.contributor.authorKale, S.S.
dc.contributor.authorPrabhu, T.
dc.date.accessioned2026-02-04T12:27:56Z
dc.date.issued2022
dc.description.abstractThis paper explores the addition of h-BN and iron to Cu-based brake pads on the performance benefits. It also investigates the effect of graded layering by synthesizing three and four-layer brake pads by powder compaction and sintering route. The top one or two layers are made of Cu-based composite containing Fe, h-BN, and W, while the middle layer is pure Cu and, bottom steel plate. Two different compositions were explored for the composites by varying Fe content. From the two composite compositions, brake pads with single-layer composite or two-layer composite were synthesized. Characterization of brake pad specimens was carried out using density measurements, optical microscopy, scanning electron microscopy, energy dispersive spectroscopy. The brake pads were subjected to simulated braking tests at braking energy/cycle of 60, 96, and 136 K Joules. Wear rate, coefficient of friction, stopping distance, stopping time, and hardness were measured and compared among other brake pads. The brake pad containing single-layer Fe rich Cu composite showed the best performance in the simulated braking tests. EDS analysis of wear debris shows the formation of iron (boride, nitride, oxide) complex which is indicative of a surface with superior dry lubricating properties. This surface is a result of synergetic interaction between h-BN and Fe particles. The iron particles which are scattered in the Cu matrix composite act as low friction regions on the brake pad surface that interrupt the high friction regions on the Cu matrix, thus reducing the local and bulk temperature rise. The two-layer composite brake-pad showed performance intermediate to the two single-layer brake pads. No advantage due to higher thermal conductivities in Fe deficient composite was observed as the two composite layers, showed similar Fe contents in their matrix phases. © IMechE 2021.
dc.identifier.citationProceedings of the Institution of Mechanical Engineers, Part J: Journal of Engineering Tribology, 2022, 236, 8, pp. 1647-1660
dc.identifier.issn13506501
dc.identifier.urihttps://doi.org/10.1177/13506501211064413
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/22493
dc.publisherSAGE Publications Ltd
dc.subjectBoron nitride
dc.subjectBrakes
dc.subjectCubic boron nitride
dc.subjectEnergy dispersive spectroscopy
dc.subjectFriction materials
dc.subjectIII-V semiconductors
dc.subjectScanning electron microscopy
dc.subjectSintering
dc.subjectThermal conductivity
dc.subjectTribology
dc.subjectWear of materials
dc.subjectBrake pads
dc.subjectComposite layer
dc.subjectFe content
dc.subjectFriction and wear
dc.subjectLayer composites
dc.subjectSingle layer
dc.subjectSliding friction
dc.subjectTribo-chemistry
dc.subjectTwo-layer
dc.subjectWear mechanisms
dc.subjectFriction
dc.titleSynergistic effects of iron and hexagonal-Boron Nitride additions in copper-based composites for braking application

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