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Open image in new window Fig. 6 Maximum flame length and speeds for baseline (test 2) and active barrier tests.
Open image in new window Fig. 7 Maximum flame length and speeds for baseline (average test 1 and 7) and active barrier tests.
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Flame images also show qualitatively that a maximum mean flame length and the onset of downwash for different fuels are related to momentum flux ratio (R) of the two streams.
Similar to the maximum reduced pressure, the longest flame length of the hybrid mixture was longer than that of lycopodium dust, but shorter than that of methane.
The maximum flame speeds were found in the range of 52% 63% of the pipe length for the straight pipe, and 59%64%% of the pipe length for the pipe containing a T-shaped branch structure.
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.
The maximum flame surface density tends to show linear dependence on the K-factor given as a function of the integral length scale and u′0/SL.
Visible flame emission was recorded on video to evaluate flame length and structure.
The maximum flame temperature was measured by a compensated thermocouple on the flame tip.
Two correlations for hydrogen jet flame length are compared.
The results illustrate that by increasing n, the flame length increases while flame luminosity weakens, steady tubular flame range in equivalence ratio shrinks, and the flame temperature decreases.
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