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首页> 外文期刊>IEEE Transactions on Aerospace and Electronic Systems >Optimal Energy Utilization for a Solar-Powered Aircraft Using Sliding-Mode-Based Attitude Control
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Optimal Energy Utilization for a Solar-Powered Aircraft Using Sliding-Mode-Based Attitude Control

机译:使用基于滑模的姿态控制的太阳能飞机最佳能量利用

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In this article, an energy optimal dynamic attitude for a solar-powered aircraft is determined and implemented using the finite-time sliding-mode approach. A nonlinear constrained optimization technique has been considered to determine the optimal attitude of the aircraft for given a geographical location, solar position, heading direction, and other flight conditions for clear sky conditions. The optimization is performed so as to travel in the fastest possible way from one location to another location without utilizing the battery power, provided the solar energy is sufficient for the flight. The gain in the velocity due to the attitude optimization is validated with the test flight results of solar unmanned aerial vehicle (UAV) Maraal, which demonstrate the efficacy of the approach proposed here. Computational fluid dynamics (CFD) simulation is carried out to estimate aerodynamic forces acting on the aircraft at different sideslip angles. The developed aircraft dynamics incorporates the nonlinearities associated with relatively large aileron and rudder deflections. To obtain the desired attitude, a sliding-mode-based control scheme is considered. A power rate reaching law is applied to avoid chattering in the controls. Finite-time stability of the closed-loop system is discussed and it is shown that the attitude angles reach the desired values in finite time.
机译:在本文中,使用有限时间滑模方法确定和实现对太阳能飞行器的能量最佳动态态度。已经考虑了非线性约束优化技术,以确定飞机的最佳态度,以便给定地理位置,太阳能位置,标题方向和用于清晰天空条件的其他飞行条件。提供优化,以便以最快的方式从一个位置到另一个位置的方式行进而不利用电池功率,只要太阳能就足够了。由于姿态优化引起的速度的增益与太阳能无人驾驶飞行器(UAV)MARAAL的测试飞行结果验证,这证明了在此提出的方法的功效。进行计算流体动力学(CFD)模拟,以估计在不同侧凸角上作用在飞机上的空气动力学力。开发的飞机动力学包括与相对大的杂音和舵偏转相关的非线性。为了获得所需的姿态,考虑了一种基于滑模的控制方案。应用功率达到法律以避免控制控制。讨论了闭环系统的有限时间稳定性,并显示姿态角度在有限时间内达到所需的值。

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