无人机终身飞行自主换电池系统

Jiyang Chen , Wenxi Li , Yingting Sha , Yinchuan Wang , Zhenqiang Zhang , Shikuan Li , Chaoqun Wang , Sile Ma
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引用次数: 0

摘要

无人机(UAV)的终身飞行对于完成各种任务至关重要,例如空中巡逻、空中救援等。然而,传统的无人机维持飞行的功率有限,需要熟练的操作员手动控制其充电过程。制造商和用户正在急切地寻求一种可靠的自动更换电池的解决方案。为了满足这一需求,我们使用创造性问题解决理论(TRIZ)和以用户为中心的设计方法(UCD),提出并设计了一种用于无人机的自主电池更换系统。在实际应用中,我们使用UCD来深入分析用户需求,识别多对技术矛盾,并使用TRIZ理论来解决这些矛盾。此外,我们设计了一个满足用户需求的自主换电池硬件系统,实现了无人机自动着陆后的换电池过程。最后,我们进行了实验来验证我们的系统的有效性。实验结果表明,我们的电池更换系统可以实现自主电池更换任务,并且我们的系统在实际环境中具有较高的效率和鲁棒性。
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Autonomous battery-changing system for UAV’s lifelong flight

Unmanned aerial vehicles (UAVs) lifelong flight is essential to accomplish various tasks, e.g., aerial patrol, aerial rescue, etc. However, traditional UAVs have limited power to sustain their flight and need skilled operators manually control their charging process. Manufacturers and users are eagerly seeking a reliable autonomous battery-changing solution. To address this need, we propose and design an autonomous battery-changing system for UAVs using the theory of inventive problem solving (TRIZ) and user-centered design (UCD) methods. For practical application, we employ UCD to thoroughly analyze user requirements, identify multiple pairs of technical contradictions, and solve these inconsistencies using TRIZ theory. Furthermore, we design an autonomous battery-changing hardware system that meets user requirements and realizes the battery change process after the automatic landing of UAVs. Finally, we conduct experiments to validate our system’s effectiveness. The experimental results show that our battery-changing system can implement the autonomous battery-changing task, and our system has high efficiency and robustness in the real environment.

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