Abnormal Grain Growth: A Spontaneous Activation of Competing Grain Rotation

Author:

Liss Klaus-Dieter12ORCID,Xu Pingguang2,Shiro Ayumi23,Zhang Shuoyuan24,Yukutake Eitaro5,Shobu Takahisa2,Akita Koichi26

Affiliation:

1. School of Mechanical, Materials, Mechatronic and Biomedical Engineering University of Wollongong Northfields Avenue NSW 2522 Australia

2. Materials Sciences Research Center Japan Atomic Energy Agency Tokai Ibaraki 319-1195 Japan

3. Synchrotron Radiation Research Center National Institutes for Quantum Science and Technology Sayo Hyogo 679-5148 Japan

4. Neutron Science and Technology Center Comprehensive Research Organization for Science and Society Tokai Ibaraki 319-1106 Japan

5. Innovation Strategy Department Industrial Technology Innovation Center of Ibaraki Prefecture 3781-1 Nagaoka, Ibaraki-cho Higashiibaraki-gun Ibaraki 311-3195 Japan

6. Department of Mechanical Systems Engineering Faculty of Science and Engineering Tokyo City University Tamazutsumi Setagaya Tokyo 158-8557 Japan

Abstract

Unconventional white‐beam Laue synchrotron X‐ray diffraction is used on fine‐grained, as‐rolled magnesium alloy during an in situ heating experiment. At high temperatures, reflections of single grains are superimposed on the halo stemming from matrix grains. Some unique grain reflections spontaneously move, indicating grain rotations in response to torque expedited at grain boundaries. When a grain boundary spontaneously activates, it can begin to rotate, allowing diffusive mass transport and activating the boundaries of its other neighbors. Now the given grain can freely rotate toward coalescence; however, the multitude of grain boundaries compete in torque orientation and magnitude, resulting in zigzag rotations. After coalescence, the larger grain is still active and continues this scenario of growth, while the majority of the matrix grains remain inactive. The first‐time experimental observation of such erratic grain behavior supplies the missing puzzlestone leading to anomalous grain growth, long postulated in literature. The method of white beam Laue diffraction on fine‐grained polycrystalline materials delivers a novel experimental method to study the erratic behavior of grain reorientation, as requested long ago by the scientific community. Such findings apply to wide ranges of materials undergoing grain growth, creep, and superplasticity, including those in metal engineering, ceramics, and geophysical disciplines.

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science

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