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Safety of Air Detritiation System Operation

机译:空气净化系统运行的安全性

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Operation of atmosphere detritiation systems during fire in confinement sector with tritium inventory at risk presents a concern for catalytic reactor to operate in thermally unstable regime. Catalytic oxidation of organic compounds commonly released during fire occurs through reactions with high heat effect and can cause uncontrollable increasing temperature in reactor. Under certain conditions self-ignition of fume gas will start and continue in regime of gas-phase reaction at very high temperature with flame propagating in direction opposite to gas flow. As a result, catalytic reactor loses its operability and presents an intrinsic hazard for atmosphere detritiation system. This study assesses the impact of various parameters, such as heat effect, rate and activation energy of catalytic chemical reaction, and concentration of hydrocarbons on probability of catalytic reactor falling into thermally unstable regime. Experimental tests with catalytic oxidation of fume gases produced by combustion of polymeric insulation materials of electrical cables confirmed results of the assessment and allowed to identify conditions for catalytic reactor to operate in thermally unstable regime. To mitigate the probability of such event, arrangement for catalytic reactors in atmosphere detritiation system shall be changed. Various options are reviewed.
机译:fire气存量处于危险中的密闭空间着火期间大气破坏系统的运行提出了催化反应器在热不稳定状态下运行的担忧。着火期间通常释放的有机化合物的催化氧化是通过具有高热效应的反应发生的,并可能导致反应堆中温度无法控制地升高。在某些条件下,烟气的自燃将在非常高的温度下以气相反应的形式开始并继续,火焰在与气流相反的方向传播。结果,催化反应器失去了可操作性,并且对大气破坏系统提出了固有的危害。这项研究评估了各种参数的影响,例如热效应,催化化学反应的速率和活化能以及碳氢化合物的浓度对催化反应器掉入热不稳定状态的可能性的影响。对电缆聚合绝缘材料燃烧产生的烟气进行催化氧化的实验测试证实了评估结果,并允许确定催化反应器在热不稳定状态下运行的条件。为了减少发生此类事件的可能性,应改变大气净化系统中催化反应器的布置。各种选项进行了审查。

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