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Extinguishment of hydrocarbon pool fires by ultrafine water mist with ammonium/amidogen compound in an improved cup burner

机译:在改进的杯形燃烧器中,通过超细水雾与铵/酰胺类化合物的灭火,扑灭烃池火

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摘要

Ultrafine water mist (UFWM) (10 mu m), as a total flooding agent, has been proven to overcome obstructions in extinguishing fire. To examine the efficacy of UFWM extinguishing pool fires and reveal the primary fire extinguishing mechanisms of heat adsorption, a predictive model of minimum extinguishing concentration (MEC) is developed based on heat extraction, and the experimental data of MECs were obtained with an improved cup burner. The contribution of heat adsorption is about 25% to 50%, and turbulence effect also plays an important role in extinguishing fire. To improve fire inhibition effectiveness of UFWM by turbulence effect, CO (NH2)(2), NH4HCO3, and (NH4)(2)HPO4 were selected as additives; KCl and KH2PO4 were also chosen for comparison purpose. It is discovered that CO (NH2)(2) and (NH4)(2)HPO4 in the low concentrations can improve the fire extinction effectiveness except NH4HCO3. CO (NH2)(2) has the most contribution to fire extinction at the optimum concentration (about 0.01 mol L-1 for n-heptane fire and 0.03 mol L-1 for ethanol fire). Moreover, CO (NH2)(2) (at 0.03 mol L-1) was dramatically better than KH2PO4 in extinguishing ethanol fire, and its effect is very close to that of KCl (at 0.067 mol L-1) for ethanol fire.
机译:超细水雾(UFWM)(<10微米)作为一种总驱油剂,已被证明可以克服灭火的障碍。为了检查UFWM扑灭池火的功效并揭示主要的热量吸收灭火机理,基于吸热建立了最小灭火浓度预测模型,并使用改进的杯形燃烧器获得了MEC的实验数据。 。热吸收的贡献约为25%至50%,湍流效应在灭火中也起着重要作用。为了通过湍流作用提高UFWM的防火效果,选择了CO(NH2)(2),NH4HCO3和(NH4)(2)HPO4作为添加剂;还选择了KCl和KH2PO4进行比较。发现低浓度的CO(NH2)(2)和(NH4)(2)HPO4可以提高除NH4HCO3之外的灭火效果。在最佳浓度下,CO(NH2)(2)对灭火的贡献最大(正庚烷燃烧约为0.01 mol L-1,乙醇燃烧约为0.03 mol L-1)。而且,CO(NH2)(2)(0.03 mol L-1)在扑灭乙醇火方面明显优于KH2PO4,其效果与KCl(0.067 mol L-1)对乙醇扑灭的效果非常接近。

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