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Only three factors are required: maximum gas temperature, the time at which this temperature occurs, and a shape constant for the curve.
Different influences (bed length, gas velocity of bed, initial bed temperature, feed concentration and cycle time) on maximum gas temperature and average conversion, etc., are obtained.
The code predicted trends are in line with experimental results and the values of peak pressure rise and maximum gas temperature are in fairly good agreement with experimental results for short duration spray fire scenarios.
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.
Finally, the results obtained by the proposed formula are also compared with the measured transient experimental data and correlation with good agreement, thus, confirming the applicability of this formula in determining the transient maximum gas temperature beneath the ceiling.
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The RFBG sensors measured maximum gas temperatures of circa 970 °C, in good agreement with those provided by thermocouples in the same position.
In diesel-FeCl3-steam injection combination, maximum combustion gas temperature and maximum cylinder pressure decreased up to 4% when compared to diesel mode.
A cooling device should be designed for its maximum anticipated cooling duty (i.e., maximum expected gas flow and maximum expected gas temperature drop).
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.
The optimum cold end diameter (dc) and the length to diameter (L/D) ratios and optimum parameters for obtaining the maximum hot gas temperature and minimum cold gas temperature are obtained through CFD analysis and validated through experiments.
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.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com