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Machining of Titanium Metal Matrix Composites: Progress Overview

The TiC particles in titanium metal matrix composites (TiMMCs) make them difficult to machine. As a specific MMC, it is legitimate to wonder if the cutting mechanisms of TiMMCs are the same as or similar to those of MMCs. For this purpose, the tool wear mechanisms for turning, milling, and grinding...

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Autores principales: Escaich, Cécile, Shi, Zhongde, Baron, Luc, Balazinski, Marek
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7664433/
https://www.ncbi.nlm.nih.gov/pubmed/33172130
http://dx.doi.org/10.3390/ma13215011
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author Escaich, Cécile
Shi, Zhongde
Baron, Luc
Balazinski, Marek
author_facet Escaich, Cécile
Shi, Zhongde
Baron, Luc
Balazinski, Marek
author_sort Escaich, Cécile
collection PubMed
description The TiC particles in titanium metal matrix composites (TiMMCs) make them difficult to machine. As a specific MMC, it is legitimate to wonder if the cutting mechanisms of TiMMCs are the same as or similar to those of MMCs. For this purpose, the tool wear mechanisms for turning, milling, and grinding are reviewed in this paper and compared with those for other MMCs. In addition, the chip formation and morphology, the material removal mechanism and surface quality are discussed for the different machining processes and examined thoroughly. Comparisons of the machining mechanisms between the TiMMCs and MMCs indicate that the findings for other MMCs should not be taken for granted for TiMMCs for the machining processes reviewed. The increase in cutting speed leads to a decrease in roughness value during grinding and an increase of the tool life during turning. Unconventional machining such as laser-assisted turning is effective to increase tool life. Under certain conditions, a “wear shield” was observed during the early stages of tool wear during turning, thereby increasing tool life considerably. The studies carried out on milling showed that the cutting parameters affecting surface roughness and tool wear are dependent on the tool material. The high temperatures and high shears that occur during machining lead to microstructural changes in the workpiece during grinding, and in the chips during turning. The adiabatic shear band (ASB) of the chips is the seat of the sub-grains’ formation. Finally, the cutting speed and lubrication influenced dust emission during turning but more studies are needed to validate this finding. For the milling or grinding, there are major areas to be considered for thoroughly understanding the machining behavior of TiMMCs (tool wear mechanisms, chip formation, dust emission, etc.).
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spelling pubmed-76644332020-11-14 Machining of Titanium Metal Matrix Composites: Progress Overview Escaich, Cécile Shi, Zhongde Baron, Luc Balazinski, Marek Materials (Basel) Review The TiC particles in titanium metal matrix composites (TiMMCs) make them difficult to machine. As a specific MMC, it is legitimate to wonder if the cutting mechanisms of TiMMCs are the same as or similar to those of MMCs. For this purpose, the tool wear mechanisms for turning, milling, and grinding are reviewed in this paper and compared with those for other MMCs. In addition, the chip formation and morphology, the material removal mechanism and surface quality are discussed for the different machining processes and examined thoroughly. Comparisons of the machining mechanisms between the TiMMCs and MMCs indicate that the findings for other MMCs should not be taken for granted for TiMMCs for the machining processes reviewed. The increase in cutting speed leads to a decrease in roughness value during grinding and an increase of the tool life during turning. Unconventional machining such as laser-assisted turning is effective to increase tool life. Under certain conditions, a “wear shield” was observed during the early stages of tool wear during turning, thereby increasing tool life considerably. The studies carried out on milling showed that the cutting parameters affecting surface roughness and tool wear are dependent on the tool material. The high temperatures and high shears that occur during machining lead to microstructural changes in the workpiece during grinding, and in the chips during turning. The adiabatic shear band (ASB) of the chips is the seat of the sub-grains’ formation. Finally, the cutting speed and lubrication influenced dust emission during turning but more studies are needed to validate this finding. For the milling or grinding, there are major areas to be considered for thoroughly understanding the machining behavior of TiMMCs (tool wear mechanisms, chip formation, dust emission, etc.). MDPI 2020-11-06 /pmc/articles/PMC7664433/ /pubmed/33172130 http://dx.doi.org/10.3390/ma13215011 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Escaich, Cécile
Shi, Zhongde
Baron, Luc
Balazinski, Marek
Machining of Titanium Metal Matrix Composites: Progress Overview
title Machining of Titanium Metal Matrix Composites: Progress Overview
title_full Machining of Titanium Metal Matrix Composites: Progress Overview
title_fullStr Machining of Titanium Metal Matrix Composites: Progress Overview
title_full_unstemmed Machining of Titanium Metal Matrix Composites: Progress Overview
title_short Machining of Titanium Metal Matrix Composites: Progress Overview
title_sort machining of titanium metal matrix composites: progress overview
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7664433/
https://www.ncbi.nlm.nih.gov/pubmed/33172130
http://dx.doi.org/10.3390/ma13215011
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AT shizhongde machiningoftitaniummetalmatrixcompositesprogressoverview
AT baronluc machiningoftitaniummetalmatrixcompositesprogressoverview
AT balazinskimarek machiningoftitaniummetalmatrixcompositesprogressoverview