Título: | PLASTIC STRESS CONCENTRATION EFFECTS IN FATIGUE STRENGTH | ||||||||||||
Autor: |
MENGEN LIU |
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Colaborador(es): |
MARCO ANTONIO MEGGIOLARO - Orientador JAIME TUPIASSU PINHO DE CASTRO - Coorientador |
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Catalogação: | 16/MAI/2023 | Língua(s): | ENGLISH - UNITED STATES |
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Tipo: | TEXT | Subtipo: | THESIS | ||||||||||
Notas: |
[pt] Todos os dados constantes dos documentos são de inteira responsabilidade de seus autores. Os dados utilizados nas descrições dos documentos estão em conformidade com os sistemas da administração da PUC-Rio. [en] All data contained in the documents are the sole responsibility of the authors. The data used in the descriptions of the documents are in conformity with the systems of the administration of PUC-Rio. |
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Referência(s): |
[pt] https://www.maxwell.vrac.puc-rio.br/projetosEspeciais/ETDs/consultas/conteudo.php?strSecao=resultado&nrSeq=62552&idi=1 [en] https://www.maxwell.vrac.puc-rio.br/projetosEspeciais/ETDs/consultas/conteudo.php?strSecao=resultado&nrSeq=62552&idi=2 |
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DOI: | https://doi.org/10.17771/PUCRio.acad.62552 | ||||||||||||
Resumo: | |||||||||||||
Elasto-plastic stress gradient factors ahead of notch tips are used to evaluate
actual notch effects in fatigue strength, quantified by fatigue stress concentration
factor (Fatigue stress concentration factor). Usually, it is smaller than the linear elastic stress concentration factor of
the notch, (Stress concentration factor)
, due to material tolerance to non-propagating short cracks. Considering that local plasticity around notch tips plays a significant role in the growth behavior of short cracks within the notch plastic zone, a sound mechanical methodology is proposed to account for the effects of elasto-plastic stress and strain fields in
the actual (Fatigue stress concentration factor) value. Two-dimensional finite element analyses are conducted to
compute stress intensity factors of smooth and notched specimens. Ramberg-Osgood model and Neuber s rule are used to achieve approximations for strain-based
intensity factors. For methodology validation, numerical predictions are compared
to experimental stress-life data of center, U, and V-notched plate specimens made
of different materials and tested under uniaxial load ratios of −1, 0, and 0.1 collected from the literature. The comparisons show good agreement proving that the
elasto-plastic solution provides more accuracy than the linear elastic one. The most
discrepant results are obtained at load ratios of 0 and 0.1, and they can be significantly improved if non-zero mean stress effects are considered.
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