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The FRP-to-parent material interfaces are modelled with a rigid-linear softening bond slip law.
Material interfaces are omnipresent in the real-world structures and devices.
The issues of derivative operator ordering and boundary conditions at material interfaces are examined in detail.
Also material interfaces are present between the explosive and the surrounding inert or reactive materials.
These material interfaces are then used to evaluate transport flux at each cell edges in multi-material hydrodynamic calculations.
Also, important technical details how to prevent intersection among different material interfaces are missing in many literature.
Similar(47)
Material interfaces were assumed to be fully bonded.
However, in many situations, typically in low transient conditions, numerical diffusion at material interfaces is excessive.
For the optimization of such laminated metal composites a fundamental understanding of the microstructural interactions and deformation processes at the internal material interfaces is necessary.
In this study, an overview of the existing methods to predict convective heat and mass transfer at air porous material interfaces is given, with a specific focus on conjugate modelling.
By using ghost points on either side of the interfaces, a global second-order accurate upwinding boundary condition capturing method for time-domain Maxwell's equations in media with material interfaces is proposed.
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