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Sintered Brake Pads Failure in High-Energy Dissipation Braking Tests: A Post-Mortem Mechanical and Microstructural Analysis

The industrial sintering process used to produce metallic matrix pads has been altered to diminish the amount of copper used. Unfortunately, replacing a large part of the copper with iron seems to have reached a limit. In the high-energy, emergency-type rail braking used in this study, the materials...

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Autores principales: Mege-Revil, Alexandre, Rapontchombo-Omanda, Jessie, Serrano-Munoz, Itziar, Cristol, Anne-Lise, Magnier, Vincent, Dufrenoy, Philippe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10647295/
https://www.ncbi.nlm.nih.gov/pubmed/37959602
http://dx.doi.org/10.3390/ma16217006
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author Mege-Revil, Alexandre
Rapontchombo-Omanda, Jessie
Serrano-Munoz, Itziar
Cristol, Anne-Lise
Magnier, Vincent
Dufrenoy, Philippe
author_facet Mege-Revil, Alexandre
Rapontchombo-Omanda, Jessie
Serrano-Munoz, Itziar
Cristol, Anne-Lise
Magnier, Vincent
Dufrenoy, Philippe
author_sort Mege-Revil, Alexandre
collection PubMed
description The industrial sintering process used to produce metallic matrix pads has been altered to diminish the amount of copper used. Unfortunately, replacing a large part of the copper with iron seems to have reached a limit. In the high-energy, emergency-type rail braking used in this study, the materials are put to the very limit of their usage capacity, allowing us to observe the evolution of the microstructure and mechanical properties of sintered, metallic matrix pads. After the braking test, their compressive behaviour was assessed using digital image correlation (DIC), and their microstructure with scanning electron microscopy (SEM). The worn material has three flat layers with different microstructures and compressive behaviours. The bottom layer seems unmodified. Macroscopic and microscopic cracks run through the intermediate layer (2–15 mm depth). The top layer has stiffened thanks to resolidification of copper. The temperature reaches 1000 °C during the braking test, which also explains the carbon diffusion into iron that result in the weakening of iron –graphite interfaces in the pad. Finally, submicronic particles are detected at many open interfaces of the worn and compressed pad. Associated with the predominant role of graphite particles, this explains the weak compressive behaviour of the pads.
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spelling pubmed-106472952023-11-01 Sintered Brake Pads Failure in High-Energy Dissipation Braking Tests: A Post-Mortem Mechanical and Microstructural Analysis Mege-Revil, Alexandre Rapontchombo-Omanda, Jessie Serrano-Munoz, Itziar Cristol, Anne-Lise Magnier, Vincent Dufrenoy, Philippe Materials (Basel) Article The industrial sintering process used to produce metallic matrix pads has been altered to diminish the amount of copper used. Unfortunately, replacing a large part of the copper with iron seems to have reached a limit. In the high-energy, emergency-type rail braking used in this study, the materials are put to the very limit of their usage capacity, allowing us to observe the evolution of the microstructure and mechanical properties of sintered, metallic matrix pads. After the braking test, their compressive behaviour was assessed using digital image correlation (DIC), and their microstructure with scanning electron microscopy (SEM). The worn material has three flat layers with different microstructures and compressive behaviours. The bottom layer seems unmodified. Macroscopic and microscopic cracks run through the intermediate layer (2–15 mm depth). The top layer has stiffened thanks to resolidification of copper. The temperature reaches 1000 °C during the braking test, which also explains the carbon diffusion into iron that result in the weakening of iron –graphite interfaces in the pad. Finally, submicronic particles are detected at many open interfaces of the worn and compressed pad. Associated with the predominant role of graphite particles, this explains the weak compressive behaviour of the pads. MDPI 2023-11-01 /pmc/articles/PMC10647295/ /pubmed/37959602 http://dx.doi.org/10.3390/ma16217006 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mege-Revil, Alexandre
Rapontchombo-Omanda, Jessie
Serrano-Munoz, Itziar
Cristol, Anne-Lise
Magnier, Vincent
Dufrenoy, Philippe
Sintered Brake Pads Failure in High-Energy Dissipation Braking Tests: A Post-Mortem Mechanical and Microstructural Analysis
title Sintered Brake Pads Failure in High-Energy Dissipation Braking Tests: A Post-Mortem Mechanical and Microstructural Analysis
title_full Sintered Brake Pads Failure in High-Energy Dissipation Braking Tests: A Post-Mortem Mechanical and Microstructural Analysis
title_fullStr Sintered Brake Pads Failure in High-Energy Dissipation Braking Tests: A Post-Mortem Mechanical and Microstructural Analysis
title_full_unstemmed Sintered Brake Pads Failure in High-Energy Dissipation Braking Tests: A Post-Mortem Mechanical and Microstructural Analysis
title_short Sintered Brake Pads Failure in High-Energy Dissipation Braking Tests: A Post-Mortem Mechanical and Microstructural Analysis
title_sort sintered brake pads failure in high-energy dissipation braking tests: a post-mortem mechanical and microstructural analysis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10647295/
https://www.ncbi.nlm.nih.gov/pubmed/37959602
http://dx.doi.org/10.3390/ma16217006
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