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首页> 外文期刊>Journal of guidance, control, and dynamics >Adaptive Control of Precision Guided Airdrop Systems with Highly Uncertain Dynamics
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Adaptive Control of Precision Guided Airdrop Systems with Highly Uncertain Dynamics

机译:高度不确定动力学的精确制导空投系统的自适应控制

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摘要

The bulk of research in the field of precision guided airdrop systems has focused on improving landing accuracy in the presence of atmospheric winds that can exceed vehicle airspeed. One important challenge of parafoil systems is their highly uncertain flight dynamic behavior and control response, which can result from canopy degradation or an offnominal inflation event. This significantly impacts the ability to reach the target and can often lead to very large miss distances. This work addresses guided airdrop system model uncertainty with a novel combined direct and indirect adaptive control strategy to quickly characterize vehicle dynamics and lateral control sensitivity in flight. Extensive simulation and experimental flight testing indicate that the proposed adaptive algorithm is capable of high-accuracy landing in a large variety of degraded conditions, including unknown nonlinear changes in control sensitivity as well as control reversals. In comparison, current industry standard algorithms experience over an order of magnitude decrease in accuracy when tested under identical scenarios.
机译:精密制导空投系统领域的大量研究都集中在提高存在着可能超过车辆空速的大气风的着陆精度上。翼型系统的一个重要挑战是其高度不确定的飞行动力学行为和控制响应,这可能是由冠层退化或名义上的通货膨胀事件引起的。这会显着影响到达目标的能力,并且通常会导致很大的未命中距离。这项工作通过新颖的直接和间接自适应控制策略解决了制导空投系统模型的不确定性,以快速表征飞行中的车辆动力学和横向控制灵敏度。大量的仿真和实验飞行测试表明,所提出的自适应算法能够在多种降级条件下进行高精度降落,包括未知的控制灵敏度非线性变化以及控制反转。相比之下,当前的行业标准算法在相同场景下进行测试时,其精度会下降一个数量级。

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