In this work a unified treatment of solid and fluid vibration problems is developed by means of the Finite-Difference Time-Domain (FDTD). The scheme here proposed takes advantage from a scaling factor in the velocity fields that improves the performance of the method and the vibration analysis in heterogenous media. Moreover, the scheme has been extended in order to simulate both the propagation in porous media and the lossy solid materials. In order to accurately reproduce the interaction of fluids and solids in FDTD both time and spatial resolutions must be reduced compared with the set up used in acoustic FDTD problems. This aspect implies the use of bigger grids and hence more time and memory resources. For reducing the time simulation ...
Finite-Difference Time-Domain (FDTD) is a popular technique for modeling computational electrodynami...
This work provides an in-depth computational performance study of the parallel finite-difference tim...
This work provides an in-depth computational performance study of the parallel finite-difference tim...
In this work a unified treatment of solid and fluid vibration problems is developed by means of the ...
In this work a unified treatment of solid and fluid vibration problems is developed by means of the ...
In this work a unified treatment of solid and fluid vibration problems is developed by means of the ...
In this work a unified treatment of solid and fluid vibration problems is developed by means of the ...
The Finite-Difference Time-Domain (FDTD) method is applied to the analysis of vibroacoustic problems...
The Finite-Difference Time-Domain (FDTD) method is applied to the analysis of vibroacoustic problems...
The Split-Field Finite-Difference Time-Domain (SF-FDTD) scheme is an optimal formulation for modelin...
We introduce a hardware acceleration technique for the parallel finite difference time domain (FDTD)...
The Split-Field Finite-Difference Time-Domain (SF-FDTD) scheme is an optimal formulation for modelin...
Finite-Difference Time-Domain (FDTD) is a popular technique for modeling computational electrodynami...
Finite-Difference Time-Domain (FDTD) is a popular technique for modeling computational electrodynami...
This work provides an in-depth computational performance study of the parallel finite-difference tim...
Finite-Difference Time-Domain (FDTD) is a popular technique for modeling computational electrodynami...
This work provides an in-depth computational performance study of the parallel finite-difference tim...
This work provides an in-depth computational performance study of the parallel finite-difference tim...
In this work a unified treatment of solid and fluid vibration problems is developed by means of the ...
In this work a unified treatment of solid and fluid vibration problems is developed by means of the ...
In this work a unified treatment of solid and fluid vibration problems is developed by means of the ...
In this work a unified treatment of solid and fluid vibration problems is developed by means of the ...
The Finite-Difference Time-Domain (FDTD) method is applied to the analysis of vibroacoustic problems...
The Finite-Difference Time-Domain (FDTD) method is applied to the analysis of vibroacoustic problems...
The Split-Field Finite-Difference Time-Domain (SF-FDTD) scheme is an optimal formulation for modelin...
We introduce a hardware acceleration technique for the parallel finite difference time domain (FDTD)...
The Split-Field Finite-Difference Time-Domain (SF-FDTD) scheme is an optimal formulation for modelin...
Finite-Difference Time-Domain (FDTD) is a popular technique for modeling computational electrodynami...
Finite-Difference Time-Domain (FDTD) is a popular technique for modeling computational electrodynami...
This work provides an in-depth computational performance study of the parallel finite-difference tim...
Finite-Difference Time-Domain (FDTD) is a popular technique for modeling computational electrodynami...
This work provides an in-depth computational performance study of the parallel finite-difference tim...
This work provides an in-depth computational performance study of the parallel finite-difference tim...