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Flight simulation study of airplane state awareness and prediction technologies

机译:飞机状态感知与预测技术的飞行仿真研究

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Airplane state awareness (ASA) is a pilot performance attribute derived from the more general attribute known as situation awareness. Airplane state alludes primarily to attitude and energy state, but also infers other state variables, such as the state of automated or autonomous systems, that can affect attitude or energy state. Recognizing that loss of ASA has been a contributing factor to recent accidents, an industry-wide team has recommended several Safety Enhancements (SEs) to resolve or mitigate the problem. Two of these SEs call for research and development of new technology that can predict energy and/or auto-flight system states, and intuitively notify or alert flight crews to future unsafe or otherwise undesired states. In addition, it is desired that future air vehicles will be able to operate with a high degree of awareness of their own well-being. This form of ASA requires onboard predictive capabilities that can inform decision-making functions of critical markers trending to unsafe states. This paper describes a high-fidelity flight simulation study designed to address the two industry-recommended SEs for current aircraft, as well as this desired self-awareness capability for future aircraft. Eleven commercial airline crews participated in the testing, completing more than 220 flights. Flight scenarios were utilized that span a broad set of conditions including several that emulated recent accidents. An extensive data set was collected that includes both qualitative data from the pilots, and quantitative data from a unique set of instrumentation devices. The latter includes a head-/eye-tracking system and a physiological measurement system. State-of-the-art flight deck systems and indicators were evaluated, as were a set of new technologies. These included an enhancement to the bank angle indicator; predictive algorithms and indications of where the auto-flight system will take the aircraft and when automation mode changes will occur or where energy-related problems may occur; and synoptic (i.e., graphical) depictions of the effects of loss of flight critical data, combined with streamlined electronic checklists. Topics covered by this paper include the research program context, test objectives, descriptions of the technologies under test, platform and operational environment setup, a summary of findings, and future work.
机译:飞机状态感知(ASA)是飞行员的性能属性,它是从更一般的属性(称为情况感知)派生而来的。飞机状态主要是指姿态和能量状态,但也可以推断其他可能影响姿态或能量状态的状态变量,例如自动化或自主系统的状态。认识到ASA的损失是最近发生事故的一个因素,因此,整个行业的团队已建议了几种安全增强措施(SE)来解决或缓解该问题。这些SE中有两个需要研发能够预测能量和/或自动飞行系统状态并直观地通知或警告机组人员未来不安全或其他不良状态的新技术。另外,期望未来的飞行器将能够在高度了解其自身健康的情况下进行操作。这种形式的ASA要求具有机载的预测功能,这些功能可以为决策功能提供关键标记趋向不安全状态的信息。本文介绍了一项高保真飞行仿真研究,旨在研究当前飞机的两个行业推荐的SE,以及未来飞机所需的自我感知能力。 11名商业航空公司的机组人员参加了测试,完成了220多次飞行。所采用的飞行场景涵盖了多种情况,其中包括模拟最近发生的事故的几种情况。收集了广泛的数据集,其中包括来自飞行员的定性数据和来自一套独特的仪器设备的定量数据。后者包括头部/眼睛跟踪系统和生理测量系统。对最先进的驾驶舱系统和指示器以及一系列新技术进行了评估。其中包括对倾斜角指示器的增强;预测算法和指示,指示自动飞行系统将把飞机带往何处以及何时将发生自动模式更改或可能发生与能源有关的问题;以及对飞行关键数据丢失的影响的概要(即图形)描述,以及精简的电子清单。本文涵盖的主题包括研究计划背景,测试目标,对被测技术的描述,平台和操作环境的设置,研究结果的概述以及未来的工作。

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