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To describe the cyclic hardening and softening effect by using one unified set of material parameters, a more sophisticated model based on the concept of internal variables is proposed as an extension of the combined isotropic-kinematic hardening model.
Here, a new probabilistic HCF model based on the concept of highly loaded region is proposed.
A new crack growth rate model based on the concept of partial crack closure is presented.
This paper deals with a simplified hydraulic fracture model based on the concept of topological derivatives.
A comprehensive kinetic model based on the concept of remote control and today's knowledge of HDS catalysts is developed.
The model based on the concept of laminar flow developing in a short capillary channel (gauze mesh) was put forward.
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This is followed by discussion of models based on the concept of microstructural periodicity.
A single best model is developed in this study using all existing models, based on the concept of model averaging.
It tries to fit the data, learn a concept, build a model based on the learned concept and apply the concept to predict from unseen data.
The validity of the proposed concept is confirmed by comparing with past experimental data and simulation results obtained using the conventional model based on the Leverett concept.
This model is based on the concept of hydrodynamic lubrication.
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