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A 2D coupled two-mesh interaction model for blast gas flow through fractured and fragmented solid media is presented.
In this work, an elastic-plastic continuum material model for blast furnace iron ore pellets is worked out from an experimental data.
In this paper, a 3D head helmet numerical model for blast analyses is developed in the finite element code ABAQUS/Explicit.
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These technologies include increasingly sophisticated computer models for blast design and blast performance prediction.
The Karagozian & Case concrete (KCC) model used for blast analysis is first proved to have low accuracy in predicting the impact-induced responses.
The proposed empirical model for PPV has also been compared with the empirical models available for blast vibrations predictions given by other researchers and found to be in good agreement with specific cases.
Gene models used for BLAST were obtained from the P. chrysosporium genome database [ 6, 71].
Therefore, it is quite essential to develop a more precise numerical model for post-blast response of RC columns.
LS-DYNA provides the LOAD_BLAST or LOAD_BLAST_ENHANCED for modeling of blast loads.
This research would focus on developing a multiscale computational model of blast impact response of high-performance nanocomposite materials for the helmet, followed by estimation of blast energy transfer to the tissues in the human head.
This experimental program has produced results which can be used to calibrate numerical models and to refine the simplified models for predicting blast loads and response of structural elements due to close-in detonations.
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