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Coupling effects of void size and void shape on the growth of prolate ellipsoidal microvoid

Coupling effects of void size and void shape on the growth of prolate ellipsoidal microvoid
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摘要 The combined effects of void size and void shape on the void growth are studied by using the classical spectrum method. An infinite solid containing an isolated prolate spheroidal void is considered to depict the void shape effect and the Fleck-Hutchinson phenomenological strain gradient plasticity theory is employed to capture the size effects. It is found that the combined effects of void size and void shape are mainly controlled by the remote stress triaxiality. Based on this, a new size-dependent void growth model similar to the Rice-Tracey model is proposed and an important conclusion about the size-dependent void growth is drawn: the growth rate of the void with radius smaller than a critical radius rc may be ignored. It is interesting that rc. is a material constant independent of the initial void shape and the remote stress triaxiality. The combined effects of void size and void shape on the void growth are studied by using the classical spectrum method. An infinite solid containing an isolated prolate spheroidal void is considered to depict the void shape effect and the Fleck-Hutchinson phenomenological strain gradient plasticity theory is employed to capture the size effects. It is found that the combined effects of void size and void shape are mainly controlled by the remote stress triaxiality. Based on this, a new size-dependent void growth model similar to the Rice-Tracey model is proposed and an important conclusion about the size-dependent void growth is drawn: the growth rate of the void with radius smaller than a critical radius rc may be ignored. It is interesting that rc. is a material constant independent of the initial void shape and the remote stress triaxiality.
出处 《Acta Mechanica Sinica》 SCIE EI CAS CSCD 2005年第3期272-277,共6页 力学学报(英文版)
基金 The project supported by the National Natural Science Foundation of China(A10102006) the New Century Excellent Talents in Universities of China.
关键词 Void shape Size effect Strain gradient Stress triaxiality Microvoid Void shape Size effect Strain gradient Stress triaxiality Microvoid
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