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Interlaminar stresses are evaluated by using stress equilibrium equations.
It is therefore essential to study the mechanical behavior of partial removable dental prostheses by using stress and deformation analysis.
In our work, we establish a theoretical model to study the diffusion induced stress (DIS) evolution and firstly discuss the crack growth by using stress intensity factor (SIF) coupled with surface effects.
In the context of a fracture mechanics approach, analytical solutions for both total and mode components of energy release rate are obtained by using stress resultant and strain discontinuities across at the crack tip.
In this work, a simple method is presented to determine residual stresses of thin films locally by using stress relaxation tests by means of focused ion beam (FIB) milling and digital image correlation (DIC).
In this paper, a numerical approach is developed to investigate the evolution of fracture process zone (FPZ) during the complete fracture process in concrete structures by using stress intensity factor-superposition method.
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By using stressed skin analysis, it is possible to assess the shear force in the roof sheeting so that damage to the fixings is prevented and a more economical design is possible.
Tissue-/organ-scale models typically use a traditional continuum mechanics approach through materials homogenization, modelling the tension development and deformation by using stress-strain relationships [ 23– 25].
In our study design, we took maximal care to minimize the potential confound of stress by using low-stress, unreinforced behavioral tasks and gentle handling procedure to keep rats awake.
Furthermore, environmental correction factors and associated PWR environment fatigue lives for the hot and cold legs were estimated by using estimated stress and strain histories and the approach described in US-NRC report: NUREG-6909.
Expressions for the root mean square values of the displacement and the stress are formulated, the latter by using the stress modes approach.
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