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The results demonstrate that the foam ceramics attenuate drastically the maximal explosion overpressure by up to fifty percent; the interconnected micro-network structure of the foam ceramics contribute to quenching gas explosion flame and suppressing shock wave overpressure.
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An approach to the correlation of maximum explosion overpressure to parameters available at process plants is presented.
The results show that the maximum explosion overpressure, pressure rising rate and flame propagation velocity of methane explosions in various concentrations increased significantly after spraying.
A correlation of maximum explosion overpressure in LNG tank area was developed based on the momentum conservation equation and the deduced factors in the explosion tests.
Meanwhile, the maximum explosion pressure declined on an average of 59.4% and the maximum explosion overpressure rising rate decreased on an average of 91.1%.
The condition of the pipe wall has a large influence on the maximum explosion overpressure and the flame-propagation speed.
While all splitter plate configurations successfully reduced the maximum explosion overpressure, the splitter plates with length 1.02D and 0.51D were the most efficient, with an average reduction in overpressure of 32 ± 3%.
The equivalence ratio ϕ was varied between 0.7 and 1.7, to study the corresponding effects on the flame acceleration and maximum explosion overpressure.
The main factors affecting the maximum explosion overpressure in an LNG tank area were deduced by a series of reduced-scale tests.
In the partially adiabatic pipe and the non-adiabatic pipe, the maximum explosion overpressure and flame-propagation speed increased initially and then gradually decreased with increasing distance.
Maximum explosion overpressure is an important index in combustible gas explosions for safety managers and fire rescue commanders.
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