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The two analytical solutions predicted 24,200 and 27,100 bed volumes.
The numerical scheme is shown to recover the known exact solutions predicted in the weak gas expansion limit and corroborates the bifurcation results from linear stability analysis.
Numerical results of the present generalized quasi-3D theory are also compared with FEM solutions predicted by other HSDT and with experimental results.
When the contact radius is comparable with the intrinsic length, surface effect is much obvious, leading to a serious deviation between the two solutions predicted respectively by the theoretical model developed for nanomaterials and the classical contact model.
The numerical solutions predicted by the present models are confirmed to be very close to the reported experimental results, and thus validate the present predictions for temperature and time and the sequence of elements with the earliest failure in their component.
Numerical solutions predicted by the proposed ADI finite-volume method are found to be in good agreement with experimental and other numerical data, while the solutions are obtained at much lower computational cost than those required by other iterative methods without factorization.
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Predictive parking, which is building momentum within mobile parking solutions, predicts where a driver is headed as soon as the app is opened, and enables users to book a spot with a single tap.
These solutions predict the behaviour of the system extremely well upto abou 50 70% conversion of the solid.
Additionally, the present solutions predict that electric-field loading causes a non-zero mode-I stress intensity factor at a closed insulating or conducting crack.
The numerical solutions predict the deformation well and confirm the experimental finding of elastic bifurcation (solutions of second mode deformations), buckling instability, and points towards the possibility of deformations resembling higher order modes not seen in the experiments.
Numerical simulations are conducted on the steel fiber reinforced concrete (SFRC) and HRC beam tests from published literature and the analytical solutions predict the experimental flexural responses quite favorably.
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