High‐Cycle‐Fatigue Anisotropy of an Aluminum Alloy Superthick Plate

Author:

Wang Hao12ORCID,Zhang ZhenJun12ORCID,Gong BaiShan12,Zhou XiangHai1,Liu Rui1,Abedi Hamid Reza3,Purcek Gencaga4,Yanar Harun4,Demirtas Muhammet5,Zhang ZheFeng12ORCID

Affiliation:

1. Shi‐changxu Innovation Center for Advanced Materials Institute of Metal Research Chinese Academy of Sciences Shenyang 110016 China

2. School of Materials Science and Engineering University of Science and Technology of China Shenyang 110016 China

3. School of Metallurgy and Materials Engineering Iran University of Science and Technology Tehran 1684613114 Iran

4. Department of Mechanical Engineering Karadeniz Technical University Trabzon 61080 Turkey

5. Department of Aerospace Engineering Samsun University Samsun 55420 Turkey

Abstract

The effect of anisotropy on high‐cycle fatigue (HCF) property along the rolling direction (RD) and the transverse direction (TD) of a 7××× aluminum alloy super thick plate is mainly investigated in this study. The results show a similar microstructure at different thicknesses, and the HCF properties are close as well. The fatigue fracture morphologies show that the fatigue crack sources are all located on the surfaces of the RD and TD specimens. By considering the differences in the HCF properties, there is only a slight anisotropy effect at the center thickness of the plate, which can be attributed to the tensile anisotropy caused by textures. Besides, the fatigue damage degree along the TD is slightly higher than that along the RD at the center thickness. The reason can be explained by two aspects: one is the higher probability of defect occurrence along the TD compared with that along the RD which is analyzed by the previously proposed Yield strength‐Tensile strength‐Fatigue strength model, and the other is the influence of the textures. The combination of hard and soft orientations may cause fatigue damage localization easily in the soft‐oriented grains which accelerates the fatigue failure.

Funder

National Natural Science Foundation of China

Youth Innovation Promotion Association of the Chinese Academy of Sciences

Publisher

Wiley

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