DETERMINING THE RECOVERY TIME OF THE FIRE-SAFE CONDITION OF HYDROGEN STORAGE AND SUPPLY SYSTEMS

Y. Abramov, V. Kryvtsova, A. Mykhailiuk
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Abstract

The fire prevention system can function in passive or active modes. In active mode, such a system implements a set of measures aimed at restoring the fire-safe state of the hydrogen storage and supply system after it is in a fire-hazardous state. The authors consider variants of its functioning for a highly reliable fire prevention system. The first option has the reliability of the fire inspection, which is equal to one, and the second option has the reliability of the fire inspection, which is different from one. Using graphs of the states of the hydrogen storage and supply system, we constructed systems of Kolmogorov equations and derived expressions for the probabilities of finding this system in the corresponding states. The article shows that the time to restore the fire-safe state of the hydrogen storage and supply system in the first variant should not exceed the probability of its being in a fire-hazardous state, reduced to the unit of the intensity of the transition of this system from a fire-safe state to a fire-hazardous state. In the second option, the time to restore the fire-safe state of the hydrogen storage and supply system increases following the law described by a hyperbola of the first order, the argument of which is the reliability of the fire safety inspection of such a system. We have obtained an expression for the reliability of the functioning of the fire prevention system focused on ensuring the fire safety of hydrogen storage and supply systems. We show that the reliability of the functioning of such a prevention system depends significantly on the reliability of the fire-engineering inspection of the hydrogen storage and supply system. We have also derived an expression for the time to restore the fire-safe state of the hydrogen storage and supply system that is determined a priori by the reliability of the fire prevention system functioning, the reliability of the fire inspection, and the intensity of the transition of the hydrogen storage and supply system from the fire-safe to the fire-hazardous state. Keywords: hydrogen storage and supply system, fire prevention, recovery time.
确定氢气储存和供应系统消防安全状态的恢复时间
防火系统可以被动或主动模式运行。在主动模式下,这种系统会执行一系列措施,目的是在氢气储存和供应系统处于火灾危险状态后恢复其防火安全状态。作者考虑了高可靠性防火系统的各种运行方式。第一种方案的防火检查可靠性等于 1,第二种方案的防火检查可靠性不同于 1。利用氢气储存和供应系统的状态图,我们构建了柯尔莫哥洛夫方程组,并推导出该系统处于相应状态的概率表达式。文章表明,在第一种方案中,氢气储存和供应系统恢复到火灾安全状态的时间不应超过其处于火灾危险状态的概率,并减小到该系统从火灾安全状态过渡到火灾危险状态的强度单位。在第二种方案中,氢气储存和供应系统恢复消防安全状态的时间按照一阶双曲线描述的规律增加,其参数是该系统消防安全检查的可靠性。我们已经获得了以确保氢储存和供应系统消防安全为重点的防火系统运行可靠性的表达式。我们表明,这种防火系统运行的可靠性在很大程度上取决于氢储存和供应系统消防工程检查的可靠性。我们还推导出了氢气储存和供应系统恢复防火安全状态所需时间的表达式,该时间由防火系统运行的可靠性、消防检查的可靠性以及氢气储存和供应系统从防火安全状态过渡到火灾危险状态的强度先验地决定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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