4.6 Article

In Situ High-Cycle Fatigue Reveals Importance of Grain Boundary Structure in Nanocrystalline Cu-Zr

期刊

JOM
卷 71, 期 4, 页码 1221-1232

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SPRINGER
DOI: 10.1007/s11837-019-03361-7

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资金

  1. U.S. Department of Energy, Office of Basic Energy Sciences, Materials Science and Engineering Division [DE-SC0014232, FWP 18-013170]
  2. U.S. Department of Energy, Office of Science, Office of Workforce Development for Teachers and Scientists, Office of Science Graduate Student Research (SCGSR) program
  3. DOE [DE-SC0014664]
  4. National Science Foundation Center for Chemistry at the Space-Time Limit [CHE-0802913]
  5. U.S. DOE's National Nuclear Security Administration [DE-NA-0003525]

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Nanocrystalline metals typically have high fatigue strengths but low resistance to crack propagation. Amorphous intergranular films are disordered grain boundary complexions that have been shown to delay crack nucleation and slow crack propagation during monotonic loading by diffusing grain boundary strain concentrations, which suggests they may also be beneficial for fatigue properties. To probe this hypothesis, in situ transmission electron microscopy fatigue cycling is performed on Cu-1 at.% Zr thin films thermally treated to have either only ordered grain boundaries or amorphous intergranular films. The sample with only ordered grain boundaries experienced grain coarsening at crack initiation followed by unsteady crack propagation and extensive nanocracking, whereas the sample containing amorphous intergranular films had no grain coarsening at crack initiation followed by steady crack propagation and distributed plastic activity. Microstructural design for control of these behaviors through simple thermal treatments can allow for the improvement of nanocrystalline metal fatigue toughness.

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