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Hardware-in-the-loop simulator for research on fault tolerant control of electrohydraulic flight control systems

机译:硬件在环仿真器,用于电动液压飞行控制系统的容错控制研究

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This paper describes the development of a hardware-in-the-loop (HIL) simulator to support the design and testing of novel fault tolerant control and condition monitoring schemes for fluid power systems emphasizing flight control applications. The simulator uses a distributed architecture to share, in a synchronized manner, the demanding computational load associated with the real-time simulation amongst a number of desktop workstations connected by a dedicated Ethernet network. The simulator runs a high-fidelity model of the F-16 fighter aircraft that is augmented in this paper by the addition of realistic nonlinear models of the hydraulic flight control surface actuators and a model of the nonlinear control surface aerodynamic loads. A specially designed state-of-the-art hydraulic test rig, which has the capacity to experimentally simulate common failure modes of a typical fluid power circuit, is used to emulate a F-16 horizontal tail actuator. The experimental actuator can thus be exercised against the realtime simulation of a F-16 aircraft operating under a variety of normal or faulty conditions. To add further realism to the simulation, a second experimental hydraulic actuator is used to generate the aerodynamic disturbing load. Novel fault tolerant control and diagnosis algorithms can therefore be verified in a realistic application scenario. Pilot-in-the-loop simulations are supported by the inclusion of a graphical visualization of the aircraft motions. The results of a typical HIL experiment, for a normally functioning hydraulic system, are presented to illustrate the operation of the simulator.
机译:本文介绍了硬件在环(HIL)仿真器的开发,该仿真器可支持针对强调飞行控制应用的流体动力系统的新型容错控制和状态监视方案的设计和测试。该模拟器使用分布式架构,以同步方式在由专用以太网络连接的多个台式工作站之间共享与实时仿真相关的苛刻计算负载。该模拟器运行F-16战斗机的高保真模型,在本文中通过添加液压飞行控制表面执行器的逼真的非线性模型和非线性控制表面空气动力学载荷的模型进行了增强。专门设计的最先进的液压试验台具有模拟典型流体动力回路常见故障模式的能力,可用来模拟F-16水平尾部执行器。因此,可以对在各种正常或故障条件下运行的F-16飞机的实时仿真进行实验性的执行器。为了使模拟更加真实,第二个实验液压执行器用于产生空气动力干扰负荷。因此,可以在实际的应用场景中验证新颖的容错控制和诊断算法。通过包含飞机运动的图形可视化来支持在环仿真。给出了正常运行的液压系统的典型HIL实验结果,以说明模拟器的操作。

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