Effects of Process Variants on Residual Stresses in Wire Arc Additive Manufacturing of Aluminum Alloy 5183

Author:

Derekar Karan S.123,Ahmad Bilal4,Zhang Xiang4,Joshi Sameehan S.56,Lawrence Jonathan7,Xu Lei8,Melton Geoff8,Addison Adrian8

Affiliation:

1. TWI Ltd., Granta Park, Great Abington, Cambridge CB21 6AL, UK;

2. Faculty of Engineering, Environment and Computing, Coventry University, Coventry CV1 5FB, UK;

3. National Structural Integrity Research Centre (NSIRC Ltd.), Granta Park, Great Abington, Cambridge CB21 6AL, UK

4. Faculty of Engineering, Environment and Computing, Coventry University, Coventry CV1 5FB, UK

5. Department of Materials Science and Engineering, University of North Texas, 3940 N Elm St., Denton, TX 76207;

6. Center for Agile and Adaptive, Additive Manufacturing, University of North Texas, 3940 N Elm St., Denton, TX 76207

7. Arden University, Arden House, Middlemarch Park, Coventry CV3 4FJ, UK

8. TWI Ltd., Granta Park, Great Abington, Cambridge CB21 6AL, UK

Abstract

Abstract Development of residual stress of high magnitude, to the extent of material yield strength and in some cases higher than yield strength, is one of the major challenges faced by components produced using the wire arc additive manufacturing (WAAM). This study focuses on aluminum alloy 5183 with respect to the residual stress formation and distribution in WAAM builds. Residual stresses were determined using the contour method. The effects of processing conditions, such as substrate thickness, interlayer temperature, and deposit height on the magnitude and distribution of residual stresses were investigated. Substrate thickness was found to have a major influence on the residual stress distribution along deposit height. Tensile residual stress up to the value of the material yield strength was present. The majority part of the deposit showed tensile stress while substrate showed compensating compressive residual stress. Lower interlayer temperature samples exhibited residual stresses of higher degree of magnitude compared with sample produced using higher interlayer temperature. Deposit height, i.e., total number of layers affected stress distribution pattern similar to substrate thickness.

Funder

Coventry University

European Commission

Lloyd's Register Foundation

Publisher

ASME International

Subject

Industrial and Manufacturing Engineering,Computer Science Applications,Mechanical Engineering,Control and Systems Engineering

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