通用航空冲突自动安全系统的初始控制策略

Zack Kirkendoll, L. Hook, N. Hutchins
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引用次数: 3

摘要

尽管技术和安全系统有所改进,通用航空仍然是一种相对不安全的旅行方式。根据2019年美国政府的统计数据,控制飞行撞地(CFIT)和失去控制飞行(LOC-I)是通用航空中飞机总损失和死亡人数的前两个贡献者。幸运的是,有可能减少地形碰撞事故的自动安全系统,以及避免气动失速和其他失去控制事故的自动方法,最近已经投入生产。然而,将这些系统合并成一个单一的控制机制会带来尚未量化的风险和潜在的突发或不期望的行为。因此,本文的研究重点是结合自动地形回避和自动安全控制飞行的潜在控制策略,以最大限度地提高某些期望特性。这项工作提出了冲突的安全约束和结构选择的初步分析,以及它们对固定翼通用航空飞机整体安全的影响。本文的主要兴趣是解决两个安全系统同时要求控制飞机的状态序列和控制输入,从而导致危及车辆安全的冲突,并将评估使用特定切换策略和控制混合的优点和缺点。在确定相关冲突案例的初始阶段之后,我们对这些案例进行了分析,以显示基于切换系统控制的缓解方法的有效性。本文还将提供数据,以便指导系统设计人员找到解决这些类型问题的最佳方法,给出他们各自的需求集。该研究是在塞斯纳172飞机模型的实时六自由度(6DoF)飞行仿真中进行的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Initial Control Strategies for Conflicting Automatic Safety Systems in General Aviation
Despite improvements in technology and safety systems, general aviation remains a relatively unsafe method of travel. According to 2019 US government statistics, Controlled Flight Into Terrain (CFIT) and Loss of Control Inflight (LOC-I) are the top two contributors for aircraft total loses and number of fatalities in general aviation. Fortunately, automatic safety systems which have the potential to decrease terrain collision accidents have been recently introduced into production as are automatic methods to avoid aerodynamic stall and other precursors to loss of control accidents. However, the union of these systems into a single control mechanism carries as-of-yet unquantified risk and potential for emergent or undesired behavior. Therefore, the research presented in this paper focuses on potential control strategies for combining automatic terrain avoidance and automatically securing controlled flight which maximizes certain desirable characteristics. This work presents initial analyses of conflicting safety constraints and architectural choices, and their impacts on the overall safety of a fixed-wing general aviation aircraft. The primary interest of this paper is to address the sequence of states and control inputs in which both safety systems request control of the aircraft concurrently leading to a conflict compromising the vehicle's safety and will evaluate the benefits and drawbacks of using specific switching strategies and control blending. After the initial phase of identifying relevant cases of conflicts, we analyze those cases to show the effectiveness of a mitigation approach based on switched-system control. The paper will also provide data in order to direct system designers as to the best approach to solve these types of problems given their individual set of requirements. The study is conducted in a realtime six degree of freedom (6DoF) flight simulation using a Cessna 172 aircraft model.
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