Investigation of critical material removal transitions in compliant machining of brittle ceramics

Compliant machining processes, such as bonnet polishing, can be used on hard and brittle ceramic materials such as alumina and silicon carbide, to produce ultra-precise surfaces with sub-micron form accuracy and nanometric surface roughness. However, a comprehensive understanding of the removal mech...

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Main Authors: Wu-Le Zhu, Beaucamp Anthony
Format: Article
Language:English
Published: Elsevier 2020-01-01
Series:Materials & Design
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127519306963
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spelling doaj-d233062c9d09440c8a3231542c8374d92020-11-25T01:17:05ZengElsevierMaterials & Design0264-12752020-01-01185Investigation of critical material removal transitions in compliant machining of brittle ceramicsWu-Le Zhu0Beaucamp Anthony1Department of Micro-Engineering, Kyoto University, JapanCorresponding author.; Department of Micro-Engineering, Kyoto University, JapanCompliant machining processes, such as bonnet polishing, can be used on hard and brittle ceramic materials such as alumina and silicon carbide, to produce ultra-precise surfaces with sub-micron form accuracy and nanometric surface roughness. However, a comprehensive understanding of the removal mechanism in such process is lacking. In this paper, an analytical model is proposed that is based on the existence of “three zones” in compliant machining process, namely elastic recovery, plastic removal and brittle fracture. The inherent relationships of the three critical pressures with actual pressure, due to compression of the elastic bonnet tool and asperity effect, are established and analyzed in association with different material removal behaviors. Analysis indicates that pad asperity plays an important role in material removal and that lower material hardness combined with higher tensile strength contributes to enlarged plastic removal zone, and thus higher manufacturability. Removal footprints and polishing tests were then generated to verify accurate prediction of the material removal rate under different conditions and demonstrate effectiveness of the proposed model. Keywords: Ultra-precision, Elastic/plastic transition, Brittle fracture, Material removal, Ceramicshttp://www.sciencedirect.com/science/article/pii/S0264127519306963
collection DOAJ
language English
format Article
sources DOAJ
author Wu-Le Zhu
Beaucamp Anthony
spellingShingle Wu-Le Zhu
Beaucamp Anthony
Investigation of critical material removal transitions in compliant machining of brittle ceramics
Materials & Design
author_facet Wu-Le Zhu
Beaucamp Anthony
author_sort Wu-Le Zhu
title Investigation of critical material removal transitions in compliant machining of brittle ceramics
title_short Investigation of critical material removal transitions in compliant machining of brittle ceramics
title_full Investigation of critical material removal transitions in compliant machining of brittle ceramics
title_fullStr Investigation of critical material removal transitions in compliant machining of brittle ceramics
title_full_unstemmed Investigation of critical material removal transitions in compliant machining of brittle ceramics
title_sort investigation of critical material removal transitions in compliant machining of brittle ceramics
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2020-01-01
description Compliant machining processes, such as bonnet polishing, can be used on hard and brittle ceramic materials such as alumina and silicon carbide, to produce ultra-precise surfaces with sub-micron form accuracy and nanometric surface roughness. However, a comprehensive understanding of the removal mechanism in such process is lacking. In this paper, an analytical model is proposed that is based on the existence of “three zones” in compliant machining process, namely elastic recovery, plastic removal and brittle fracture. The inherent relationships of the three critical pressures with actual pressure, due to compression of the elastic bonnet tool and asperity effect, are established and analyzed in association with different material removal behaviors. Analysis indicates that pad asperity plays an important role in material removal and that lower material hardness combined with higher tensile strength contributes to enlarged plastic removal zone, and thus higher manufacturability. Removal footprints and polishing tests were then generated to verify accurate prediction of the material removal rate under different conditions and demonstrate effectiveness of the proposed model. Keywords: Ultra-precision, Elastic/plastic transition, Brittle fracture, Material removal, Ceramics
url http://www.sciencedirect.com/science/article/pii/S0264127519306963
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AT beaucampanthony investigationofcriticalmaterialremovaltransitionsincompliantmachiningofbrittleceramics
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