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Article

Effects of Temperature on the Evolution of Yield Surface and Stress Asymmetry in A356–T7 Cast Aluminium Alloy

1
Department of Industrial and Materials Science, Chalmers University of Technology, 41296 Gothenburg, Sweden
2
Volvo Car Corporation, Analysis and Verification, 40531 Gothenburg, Sweden
*
Author to whom correspondence should be addressed.
Materials 2021, 14(24), 7898; https://doi.org/10.3390/ma14247898
Submission received: 23 November 2021 / Revised: 10 December 2021 / Accepted: 17 December 2021 / Published: 20 December 2021

Abstract

As the electrification of vehicle powertrains takes prominence to meet stringent emission norms, parts of internal combustion engines like cylinder heads are subjected to an increased number of thermal load cycles. The cost-effective design of such structures subjected to cyclic thermo-mechanical loads relies on the development of accurate material models capable of describing the continuum deformation behaviour of the material. This study investigates the effect of temperature on the evolution of flow stress under cyclic loading in A356-T7 + 0.5% Cu cast aluminium alloy commonly used in modern internal combustion engine cylinder heads. The material exhibits peak stress and flow stress asymmetry with the stress response and flow stress of the material under compressive loading higher than under tension. This peak and flow stress asymmetry decrease with an increase in temperature. To compare this stress asymmetry against conventional steel, cyclic strain-controlled fatigue tests are run on fully pearlitic R260 railway steel material. To study the effect of mean strain on the cyclic mean stress evolution and fatigue behaviour of the alloy, tests with tensile and compressive mean strains of +0.2% and −0.2% are compared against fully reversed (Rε = −1) strain-controlled tests. The material exhibits greater stress asymmetry between the peak tensile and peak compressive stresses for the strain-controlled tests with a compressive mean strain than the tests with an identical magnitude tensile mean strain. The material exhibits mean stress relaxation at all temperatures. Reduced durability of the material is observed for the tests with tensile mean strains at lower test temperatures of up to 150 °C. The tensile mean strains at elevated temperatures do not exhibit such a detrimental effect on the endurance limit of the material.
Keywords: aluminium; steel; mechanical behaviour; fatigue; stress asymmetry; isotropic hardening aluminium; steel; mechanical behaviour; fatigue; stress asymmetry; isotropic hardening

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MDPI and ACS Style

Natesan, E.; Ahlström, J.; Eriksson, S.; Persson, C. Effects of Temperature on the Evolution of Yield Surface and Stress Asymmetry in A356–T7 Cast Aluminium Alloy. Materials 2021, 14, 7898. https://doi.org/10.3390/ma14247898

AMA Style

Natesan E, Ahlström J, Eriksson S, Persson C. Effects of Temperature on the Evolution of Yield Surface and Stress Asymmetry in A356–T7 Cast Aluminium Alloy. Materials. 2021; 14(24):7898. https://doi.org/10.3390/ma14247898

Chicago/Turabian Style

Natesan, Elanghovan, Johan Ahlström, Stefan Eriksson, and Christer Persson. 2021. "Effects of Temperature on the Evolution of Yield Surface and Stress Asymmetry in A356–T7 Cast Aluminium Alloy" Materials 14, no. 24: 7898. https://doi.org/10.3390/ma14247898

APA Style

Natesan, E., Ahlström, J., Eriksson, S., & Persson, C. (2021). Effects of Temperature on the Evolution of Yield Surface and Stress Asymmetry in A356–T7 Cast Aluminium Alloy. Materials, 14(24), 7898. https://doi.org/10.3390/ma14247898

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