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The study is based on a continuum damage mechanics model which is implemented within the Finite Element Method (FEM).
A pharmaceutical roller compaction process was modelled using the Johanson powder mechanics model, which may be employed to achieve desired process performance.
The paper presents a continuum damage mechanics model, which is based on the general thermodynamic framework advocated by Lemaitre and Chaboche, etc., for high cycle fatigue.
The method employs a damage mechanics model, which accounts for stiffness degradation and damage evolution of a metal medium with a measurement of ultrasonic velocity.
The mechanics model which was developed by the authors for concrete filled steel tubular (CFST) beam columns subjected to constant axial load and cyclically increasing flexural loading, is used to analyze the behavior of CFDST beam columns.
These results yield a quantitative mechanics model which can be integrated into an overarching frictional model to predict skin on texture behavior due to both adhesion and edge interlocking.
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It is designed specifically to overcome drawbacks in existing molecular structural mechanics models, which are not consistent with their underlying chemical force fields in terms of energy.
The first condition impedes the usage of molecular mechanics models, which are more likely to be applied to crystal-like clusters of larger rare gases such as Ar or Xe, but not to a superfluid quantum liquid such as a He droplet.
A modified equivalent micro-mechanics model, which is considered based on an initial model of an infinite matrix with an inclusion, has been developed for estimation of the elastic modulus of concrete.
These results are shown to be inconsistent with the predictions of a linear elastic fracture mechanics (LEFM) model, which considers a cracked laminate as a bridged monolithic crack, for the lower metal yield strength Cu/alumina and Al/alumina laminates.
The method is based on a two-scale continuum damage mechanics model in which both plasticity and damage mechanisms are assumed to take place at a scale smaller than the scale of the representative volume element.
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