Energy efficient trajectory generation for a state-space based JPL Aerobot

Weizhong Zhang, T. Inanc, A. Elfes
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引用次数: 2

Abstract

The 40th anniversary of Apollo 11 project with man landing on the moon reminds the world again by what science and engineering can do if the man is determined to do. However, a huge step can only be achieved step by step which may be relatively small at the beginning. Robotic exploration can provide necessary information needed to do the further step safely, with less cost, more conveniently. Trajectory generation for a robotic vehicle is an essential part of the total mission planning. To save energy by exploiting possible resources such as wind will assist a robotic explorer extend its life span and perform tasks more reliably. In this paper, we propose to utilize Nonlinear Trajectory Generation (NTG) methodology to generate energy efficient trajectores for the JPL Aerobot by exploiting wind. The Aerobot model is decoupled into longitudinal and lateral dynamics with control inputs as elevator deflection δe, thrust demand δT, vectoring angle δv for the longitudinal motion, aileron deflection δa, rudder deflection δr for the lateral motion. The outputs are the velocities and orientation of the Aerobot. The Aerobot state space model parameters are obtained from experimental identification on AURORA Airship since the actual JPL Aerobot is similar to the AURORA Airship. In this paper, the results show that with the state-space model, the proposed trajectory generation method can guide the Aerobot to take advantage of previously known wind profile to generate an energy-efficient trajectory.
基于状态空间的JPL飞行器的高能效轨迹生成
阿波罗11号登月40周年再次提醒世界,如果人类有决心,科学和工程可以做什么。然而,一个巨大的进步只能一步一步地实现,开始时可能相对较小。机器人探测可以提供必要的信息,以更低的成本,更方便地安全地完成下一步。机器人飞行器的轨迹生成是整个任务规划的重要组成部分。通过利用风能等可能的资源来节约能源,将有助于机器人探测器延长其寿命,并更可靠地执行任务。在本文中,我们提出利用非线性轨迹生成(NTG)方法,利用风力为JPL Aerobot生成节能轨迹。Aerobot模型被解耦为纵向和横向动力学,控制输入为升降舵偏转δe、推力需求δT、纵向运动矢量角δv、副翼偏转δa、侧向运动方向舵偏转δr。输出是Aerobot的速度和方向。由于实际的喷气推进实验室Aerobot与AURORA飞艇相似,因此Aerobot状态空间模型参数是通过在AURORA飞艇上的实验辨识得到的。研究结果表明,在状态空间模型下,所提出的轨迹生成方法可以引导Aerobot利用已知风廓线生成节能的轨迹。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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