结合动力再生技术和重量最小化的飞机-四轴无人机混合动力

Martin O'Connell, Raven A. Santos, Brianna Ho, Isaac S. Hasan, Joshua J. Kidwell, Lizbeth Gamino, Christian J. Corral, Diego E. Portillo-Gonzalez, Luis C. Ortiz Echeverria, Francesco S. Ruotolo, Ivan Sanchez, S. Dobbs, Jesus E. Rojas, Andrea Dominguez, Derek M. Mata, Dominic S. Sanqui, Mumen E. Abbas, Christian A. Ruvalcaba, Hanqing Zhao, Dylan, R. Godfrey, Michael Youssef, Alan R. Viernes, Christopher T. Hua, Steven Huynh, Peter Ayad, Christopher J. Watson, Anthony Damelio, Reynaldo Martinez Villalobos, Zhen Yu
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引用次数: 1

摘要

这篇论文包含了加州州立理工大学波莫纳分校的学生工程团队的发展,通过飞行中的动力再生和结构电池集成来增加飞机-四轴无人机(UAV)混合动力的续航力和航程。电动无人机通常受到航程低和飞行续航力的限制,限制了操作员的能力并影响了他们的任务。增加这些参数将允许无人机在民用和军事能力中同时在监视和检查角色中运行较长时间。此外,通过将传统固定翼飞机的飞行特性与四轴飞行器的悬停能力相结合,无人机可以具有垂直起降(VTOL)能力,并且可以更精确地在感兴趣的点上机动。该团队将对一架现成的四轴飞行器和一架飞机进行广泛的改装,以制造出混合动力飞行器,用结构电池取代传统的翼梁,太阳能电池取代上部机翼的外皮,无线感应线圈取代下部机翼的外皮。电源管理系统将用于有效地控制电池的使用,并通过配电线路和机器人充电站平衡飞行产生的电力与飞行操作消耗的电力。这些地面站将用于远程更换新电池,飞机将自动返回充电,然后再次发射以恢复自主飞行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Airplane-Quadcopter UAV Hybrid Incorporating Power Regeneration Technologies & Weight Minimization
This paper encompasses the developments by a California State Polytechnic University, Pomona student engineering team to increase the endurance and range of an airplane-quadcopter unmanned aerial vehicle (UAV) hybrid via in-flight power regeneration and structural battery integration. Electric UAVs are commonly limited by low range and flight endurance, limiting the capabilities of an operator and affecting their mission. Increasing these parameters would allow a UAV to operate in both surveillance and inspection roles for extended periods of time in civilian and military capacities. Additionally, by combining the flight characteristics of a conventional fixed-wing aircraft with the hovering ability of a quadcopter, a UAV can become vertical takeoff and landing (VTOL) capable and can maneuver over points of interest more precisely. An off-the-shelf quadcopter and airplane are to be extensively modified by the team to create the hybrid craft, with structural batteries replacing conventional wing spars, solar cells replacing the upper wing skins, and wireless induction coils replacing the lower wing skins. A power management system will be used to efficiently control battery usage and balance generated power from flight along power distribution lines and robotic recharging stations with expended power from flight operations. These ground stations will be built to remotely swap drained batteries with fresh replacements, with the aircraft automatically returning to recharge, then launching again to resume autonomous flight.
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