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On-board fault diagnostics for fly-by-light flight control systems using neural network flight processors

机译:使用神经网络飞行处理器的轻载飞行控制系统的机载故障诊断

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Abstract: Fly-by-Light control systems offer higher performance for fighter and transport aircraft, with efficient fiber optic data transmission, electric control surface actuation, and multi-channel high capacity centralized processing combining to provide maximum aircraft flight control system handling qualities and safety. The key to efficient support for these vehicles is timely and accurate fault diagnostics of all control system components. These diagnostic tests are best conducted during flight when all facts relating to the failure are present. The resulting data can be used by the ground crew for efficient repair and turnaround of the aircraft, saving time and money in support costs. These difficult to diagnose (Cannot Duplicate) fault indications average 40 - 50% of maintenance activities on today's fighter and transport aircraft, adding significantly to fleet support cost. Fiber optic data transmission can support a wealth of data for fault monitoring; the most efficient method of fault diagnostics is accurate modeling of the component response under normal and failed conditions for use in comparison with the actual component flight data. Neural Network hardware processors offer an efficient and cost-effective method to install fault diagnostics in flight systems, permitting on-board diagnostic modeling of very complex subsystems. Task 2C of the ARPA FLASH program is a design demonstration of this diagnostics approach, using the very high speed computation of the Adaptive Solutions Neural Network processor to monitor an advanced Electrohydrostatic control surface actuator linked through a AS-1773A fiber optic bus. This paper describes the design approach and projected performance of this on-line diagnostics system.!0
机译:摘要:“按光飞控”系统为战斗机和运输机提供了更高的性能,通过有效的光纤数据传输,电控地面操纵和多通道高容量集中处理相结合,可提供最大的飞机飞行控制系统处理质量和安全性。有效支持这些车辆的关键是对所有控制系统组件进行及时,准确的故障诊断。当存在与故障有关的所有事实时,最好在飞行过程中进行这些诊断测试。结果数据可以由地勤人员用于飞机的有效维修和周转,从而节省了时间和金钱的支持成本。这些难以诊断(无法重复)的故障指示平均占当今战斗机和运输机维护活动的40%至50%,极大地增加了机队支持成本。光纤数据传输可以支持大量数据以进行故障监视;故障诊断的最有效方法是在正常和故障情况下对组件响应进行准确建模,以与实际组件飞行数据进行比较。神经网络硬件处理器提供了一种在飞行系统中安装故障诊断程序的有效且具有成本效益的方法,从而可以对非常复杂的子系统进行机载诊断模型。 ARPA FLASH程序的任务2C是此诊断方法的设计演示,它使用自适应解决方案神经网络处理器的超高速计算来监视通过AS-1773A光纤总线链接的高级静电静力控制表面执行器。本文介绍了此在线诊断系统的设计方法和预期性能。!0

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