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Results show that the maximum ceiling temperature increases and the ceiling temperature decays faster as ambient pressure reduces.
The simulation results agree well with experiments in terms of the averaged flame height and the maximum ceiling temperature.
The analysis in this article has shown that Q′ controls both the critical velocity and the maximum ceiling temperature in the tunnel.
The air entrainment ratio Cα is proposed in the correlation to predict the maximum ceiling temperature based on previous plume theory, considering the low pressure effect and entrainment coefficient.
Additionally, the experimental data are compared with previous results from three other model scale experiments to verify and improve the proposed formula, the previous results are good supplement to the existing data and helpful for us to understanding the changing law of the maximum ceiling temperature in a wider range of the modified dimensionless heat release rate Q′.
Similar(54)
Correlation for the maximum ceiling gas temperature is proposed, taking the heat release rate, distance to the nearest sidewall, and effective ceiling height into account.
A set of burning experiments were conducted to investigate the influence of sidewall restriction on the maximum ceiling gas temperature of buoyancy-driven thermal flow in a reduced scale tunnel model.
The heat release rate, fire growth rate, maximum gas temperature beneath the ceiling, temperature distribution, total heat flux at floor level, flame length, and back-layering length were investigated.
Tunnel ceiling temperature shows the opposite trend.
Its low ceiling temperature requires end-capping extremities.
Therefore, in actual production, the residual resource depletion rate has a maximum ceiling.
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