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- W2165472188 abstract "The stress and strain fields predicted at a global structural level are unable to determine the damage and failure mechanisms at the constituent level and the resulting stiffness degradation. To establish a mapping relation between the global and constituent response parameters, a new four-cell micromechanics model has been developed for an unbalanced weave subjected to a thermal-mechanical loading. The thermal-mechanical mapping relations at different microstructural levels are derived based on the multicell homogenization, intercell compatibility conditions, and energy methods. The dual-function micromechanics model can not only characterize the effective thermal-mechanical properties of the unbalanced weave at a given constituent damage, but can also compute the stress and strain at each constituent. The calculated constituent stress and strain can be used in a mechanism-driven failure criterion to predict the failure mode, failure sequence, and the synergistic interaction that leads to global stiffness degradation and the final rupture. The accuracy and the dual function of the developed micromechanics model are demonstrated with its application to a balanced plain weave, an unbalanced plain weave, and failure mode simulation of a tensile coupon test." @default.
- W2165472188 created "2016-06-24" @default.
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- W2165472188 date "2006-05-01" @default.
- W2165472188 modified "2023-10-14" @default.
- W2165472188 title "A Four-Cell Decomposition Model for Unbalanced Woven Fabric Composites Subjected to Thermal-Mechanical Loading" @default.
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- W2165472188 doi "https://doi.org/10.2514/6.2006-1690" @default.
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