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Experimental study on the effect of mechanical ventilation conditions and fire dynamics on the pressure evolution in an air-tight compartment

机译:机械通风条件与火动力学对气密隔室压力演化影响的实验研究

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摘要

The paper presents a comprehensive set of experiments on the effect of mechanical ventilation conditions and fire dynamics on temporal pressure evolution in a reduced-scale, air-tight and mechanically-ventilated enclosure.A square propane burner with flow controller imposes a quadratic fire growth followed by a steady-state (0.1 or 0.2 g/s) and then a quadratic decay phase. Eight tests are discussed with different ventilation conditions in terms of flow resistances and initial ventilation flow rates ranging from 12 to 40 m(3)/h, corresponding to air renewal rates of 6.4-21.3 h(-1).The pressure evolution is characterized by an over-pressure peak (up to 900 Pa) followed by a quasi-steady state and then, an under-pressure peak (up to -760 Pa). The pressure variation is due to the mechanical effect (i.e., ventilation configurations), while also influenced by thermal effects. The pressure amplitudes increase with ventilation resistances. Both the total network resistance and individual resistances in admission and extraction ducts are important for the pressure variation. The enhancement and reduction of ventilation flow rates depend on both the fire-induced pressure and ventilation resistances. Experimental results show that the mechanical effect does not strongly affect gas temperatures.
机译:本文提出了一套全面的实验,就机械通风条件和火灾动力学对颞型压力演化的效果进行了一系列的实验,减少了空间,气密和机械通风的外壳。具有流量控制器的方形丙烷燃烧器施加了二次火灾增长通过稳态(0.1或0.2g / s),然后是二次衰减阶段。在流动电阻和初始通风流量范围内讨论了八个测试,而初始通风流量范围为12至40μm(3)/ h,对应于6.4-21.3h(-1)的空气更新速率。压力进化的特征在于通过过压峰(最多900Pa),然后是准稳态,然后,压力下峰(高达-760Pa)。压力变化是由于机械效果(即通风配置),同时也受到热效应的影响。压力幅度随通风电阻而增加。入院和提取管道中的总网络电阻和各个电阻都对于压力变化很重要。通风流量的增强和降低取决于火诱​​导的压力和通风抗性。实验结果表明,机械效果不会强烈影响气体温度。

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