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Fire Detection Tradeoffs as a Function of Vehicle Parameters

机译:作为车辆参数的函数的火灾侦测权衡

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Fire survivability depends on the detection of and response to a fire before it has produced an unacceptable environment in the vehicle. This detection time is the result of interplay between the fire burning and growth rates; the vehicle size; the detection system design; the transport time to the detector (controlled by the level of mixing in the vehicle); and the rate at which the life support system filters the atmosphere, potentially removing the detected species or particles. Given the large differences in critical vehicle parameters (volume, mixing rate and filtration rate) the detection approach that works for a large vehicle (e.g. the ISS) may not be the best choice for a smaller crew capsule. This paper examines the impact of vehicle size and environmental control and life support system parameters on the detectability of fires in comparison to the hazard they present. A lumped element model was developed that considers smoke, heat, and toxic product release rates in comparison to mixing and filtration rates in the vehicle. Recent work has quantified the production rate of smoke and several hazardous species from overheated spacecraft polymers. These results are used as the input data set in the lumped element model in combination with the transport behavior of major toxic products released by overheating spacecraft materials to evaluate the necessary alarm thresholds to enable appropriate response to the fire hazard.
机译:火灾生存能力取决于在车辆中产生不可接受的环境之前对火的检测和反应。这种检测时间是火灾燃烧和增长率之间相互作用的结果;车辆尺寸;检测系统设计;传输时间到探测器(由车辆中混合水平控制);和寿命支持系统过滤大气的速率,可能妨碍检测到的物种或颗粒。鉴于临界车辆参数(体积,混合速率和过滤速率)的巨大差异,用于大型车辆的检测方法(例如,ISS)可能不是较小的船员胶囊的最佳选择。本文研究了车辆尺寸和环境控制和寿命支持系统参数对触发的可检测性的影响,与它们存在的危害相比。开发了一种集体元件模型,其考虑烟雾,热量和有毒产品释放速率与车辆中的混合和过滤速率相比。最近的工作已经量化了来自过热的航天器聚合物的烟雾和几种危险物种的生产率。这些结果用作集总元件模型中的输入数据,与过热航天器材料释放的主要有毒产品的传输行为,以评估必要的警报阈值,以便适当地对火灾危害的反应。

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