详细信息

Revealing the fatigue strengthening and damage mechanisms of surface-nanolaminated gradient structure  ( SCI-EXPANDED收录 EI收录)  

文献类型:期刊文献

英文题名:Revealing the fatigue strengthening and damage mechanisms of surface-nanolaminated gradient structure

作者:Zhang, Yong[1,2];He, Chen-Yun[1];Wang, Xiaogang[3];Hama, Takayuki[2];Sun, Binhan[1];Jia, Yun-Fei[1];Zhang, Xian-Cheng[1];Tu, Shan-Tung[1]

机构:[1]East China Univ Sci & Technol, Sch Mech & Power Engn, Key Lab Pressure Syst & Safety, Minist Educ, Meilong Rd 130, Shanghai 200237, Peoples R China;[2]Kyoto Univ, Grad Sch Energy Sci, Yoshida Honmachi,Sakyo Ku, Kyoto 6068501, Japan;[3]Hunan Univ, Coll Mech & Vehicle Engn, State Key Lab Adv Design & Mfg Technol Vehicle, Changsha 410082, Peoples R China

年份:2024

卷号:182

外文期刊名:INTERNATIONAL JOURNAL OF PLASTICITY

收录:;EI(收录号:20243817066151);WOS:【SCI-EXPANDED(收录号:WOS:001317949900001)】;

基金:This work was sponsored by the National Key Research and Development Project (Grant No. 2022YFB4600019) , the National Natural Science Foundation of China (52222505, 52321002 and 52005185) , Natural Science Foundation of Shanghai (23ZR1415500) .

语种:英文

外文关键词:Nanolaminated gradient structure; Fatigue damage mechanism; Back stress; Crystal plasticity; Crack propagation

摘要:Extending the fatigue life of metals is a critical concern for maintaining material and component integrity in engineering systems. The integration of gradient structures within materials represents a highly promising approach to enhance the fatigue properties in metallic materials, while a detailed mechanistic understanding of the fatigue damage evolution of such structures is yet to be developed. Here, we report that the surface-nanolaminated gradient structure comprised of nanolaminates and hierarchical twins imparts remarkable resistance to both low-cycle and highcycle fatigue. A dislocation-based strain gradient crystal plasticity model is developed to investigate the strengthening and damage mechanisms of our gradient structure. The size dependence of the initial dislocation density, its evolution and back stress hardening are taken into account and verified by the experimental data. The simulation results reveal that the strain delocalization and back stress hardening induced by the structure gradient significantly mitigate the fatigue damage accumulation. Additionally, in contrast to conventional gradient structures, the mechanical stability of the present structure enables these strengthening mechanisms to persist until crack initiation. These effects, combined with the sequential toughening mechanisms activated in the surface-nanolaminated gradient structure, ensure a marked life extension under low-cycle fatigue (by a factor of four), outperforming conventional gradient and other microstructural design strategies. Finally, a multiscale anti-fatigue design principal for damage homogenization is given based on the prior quantitative analysis.

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