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Light Aviation And Flight Safety: Monitoring System For Unpressurised Cabins. Physiological Parameters Monitorization

机译:轻型航空和飞行安全:非加压舱的监控系统。生理参数监测

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摘要

Light aviation pilots are exposed to many different environmental situations due to non-pressurized aircraft cabins. Those variations can push the human body to some limits, which associated with psychological factors may culminate in incidents or even fatalities. Really, a literature review on this theme suggests that a significant part of the incidents and fatalities within the light aviation that uses non-pressurized aircraft cabins are related to the human factor. This analysis might bring up a concealed but significant and worrying phenomenon in terms of flight safety: changes of pilot performance in the amendment of physiological parameters concerning to different pressure variations during the various flight stages. Flying is a reality that, although being used mostly for fast passenger and cargo transportation, also it is requested for leisure purposes by a very heterogeneous pool of pilots. This may be a concerning situation due to the disparity of human body (individual) reactions to flight conditions. Nature, both of environmental factors (like as pressure, temperature and humidity) or of human physiological behavior during different flight phases, is unpredictable. Therefore, it is very difficult to establish safety boundaries in this specific context. This work main objective is to analyze the influence of flight environmental conditions on pilot's physiological parameters and thus on tasks performance during different flight situations (or scenarios). In order to perform this analysis a portable and ergonomic monitoring system was built. This equipment records both the cerebral oximetry to study the phenomenon of hypoxia and its importance, and electrocardiography (ECG) and electroencephalography (EEG) parameters in order to establish a correlation among pressure variations, amount of mental workload, and several individual physiological parameters during different flight stages. The specific purpose of this study is how to define physiological limits for each pilot, calibrated through simulation tests contemplating different flight scenarios, in order to create in the next future a on board alert system to prevent possible incidents and fatalities. Also we suggest potential restrictions on European pilots licensing legislation for light aviation, based on some physiological boundaries, as a positive contribution to a safer flight environment.
机译:由于机舱压力不足,轻型航空飞行员会面临许多不同的环境情况。这些变化可以将人体推到某个极限,与心理因素有关的极限可能最终导致事故甚至死亡。确实,有关该主题的文献综述表明,使用非加压飞机机舱的轻型航空事故和死亡中的很大一部分与人为因素有关。这种分析可能会在飞行安全方面带来一个隐蔽但重大而令人担忧的现象:飞行员性能的变化,涉及到在各个飞行阶段中与不同压力变化有关的生理参数的修正。飞行是一个现实,尽管它主要用于快速的客运和货运,但也有非常多样化的飞行员出于休闲目的而要求飞行。由于人体(个体)对飞行条件的反应差异,这可能是一个令人担忧的情况。自然,无论是环境因素(例如压力,温度和湿度),还是在不同飞行阶段的人类生理行为,都是无法预测的。因此,在这种特定情况下建立安全边界非常困难。这项工作的主要目的是分析飞行环境条件对飞行员生理参数的影响,从而分析不同飞行情况(或场景)下任务的绩效。为了执行此分析,构建了便携式且符合人体工程学的监控系统。该设备既记录了脑血氧饱和度以研究缺氧现象及其重要性,又记录了心电图(ECG)和脑电图(EEG)参数,以建立压力变化,精神工作量和不同时期的几个个体生理参数之间的相关性飞行阶段。这项研究的特定目的是如何通过考虑不同飞行场景的模拟测试为每个飞行员定义生理极限,以便在未来创建机载警报系统,以防止可能发生的事故和死亡。我们还建议基于某些生理界限,对欧洲飞行员对轻型航空的许可立法进行限制,以期为更安全的飞行环境做出积极贡献。

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