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Experimental investigation and modelling of hot forming B4C/AA6O61 low fraction volume reinforcement composites

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Title: Experimental investigation and modelling of hot forming B4C/AA6O61 low fraction volume reinforcement composites
Authors: Zheng, K
Lin, J
Wu, G
Hall, RW
Dean, TA
Item Type: Journal Article
Abstract: This paper presents an experimental investigation of the hot deformation behaviour of 15% B4C particle reinforced AA6061 matrix composites and the establishment of a novel corresponding unified and physically-based visco-plastic material model. The feasibility of hot forming of a metal matrix composite (MMC) with a low volume fraction reinforcement has been assessed by performing hot compression tests at different temperatures and strain rates. Examination of the obtained stress-strain relationships revealed the correlation between temperature and strain hardening extent. Forming at elevated temperatures enables obvious strain rate hardening and reasonably high ductility of the MMC. The developed unified material model includes evolution of dislocations resulting from plastic deformation, recovery and punching effect due to differential thermal expansion between matrix and reinforcement particles during non-steady state heating and plastic straining. Good agreement has been obtained between experimental and computed results. The proposed material model contributes greatly to a more thorough understanding of flow stress behaviour and microstructural evolution during the hot forming of MMCs.
Issue Date: 1-Apr-2018
Date of Acceptance: 7-Feb-2018
URI: http://hdl.handle.net/10044/1/67575
DOI: https://dx.doi.org/10.15632/jtam-pl.56.2.457
ISSN: 1429-2955
Publisher: Versita
Start Page: 457
End Page: 469
Journal / Book Title: Journal of Theoretical and Applied Mechanics
Volume: 56
Issue: 2
Copyright Statement: © 2018 The Authors. Articles in JTAM are published under Creative Commons Attribution - Non-commercial 3.0. Unported License http://creativecommons.org/licenses/by-nc/3.0/legalcode.
Sponsor/Funder: Royal Academy Of Engineering
Commission of the European Communities
Tata Steel UK Ltd
Funder's Grant Number: 10145/115
723517
PO 4200060708
Keywords: Science & Technology
Technology
Mechanics
Metal Matrix Composite (MMC)
hot compression
AA6061
B4C
dislocation
METAL-MATRIX COMPOSITES
MICROSTRUCTURE EVOLUTION
CONSTITUTIVE-EQUATIONS
BEHAVIOR
DEFORMATION
Publication Status: Published
Appears in Collections:Mechanical Engineering
Faculty of Engineering