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Porous media combustion can increase flame stability and gain higher conversion efficiency compared with the free flame combustor.
Aerosol combustion, especially for high-flash point materials, is a very complicated phenomenon inclusive of droplet evaporation, temperature increase, flame formation, flame propagation, and flame quench.
The swirl burner with a specially designed preheating chamber can increase flame temperature, accelerate ignition and enhance burning intensity of pulverized coal under oxy-coal combustion.
A high number of obstacles in the duct can increase flame turbulence and lead to flame acceleration.
Two contradictory hypotheses were posited: (1) that new furniture might increase flame retardant releases immediately after introduction due to initial off-gassing of new materials or (2) that older furniture would release more flame retardants due to mechanical breakdown of polyurethane foam.
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For the same blockage ratios, results demonstrated that plates and triple prisms increased flame speed and overpressure much larger.
Here, increased flame temperatures lead to a dramatic increase of the maximum supportable mass flux.
As expected carbon pigmented and carbon plus talc filled samples showed a significant increase in oxygen concentration and surface wettability with increasing flame treatment.
Confining the reaction enables the trapped gases to enhance convection, yielding increased flame speeds.
However, gas generator propellants with ammonium nitrate have historically exhibited incomplete combustion resulting in increased flame temperatures differing significantly from equilibrium values.
Porous medium burners are characterized by higher burning rates, increased flame stability, and lower combustion zone temperatures, which lead to a reduction in NOx formation.
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