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Design, fabrication, and performance characterization of multifunctional structures to harvest solar energy for flapping wing aerial vehicles.

机译:多功能结构的设计,制造和性能表征,以收集用于扑翼飞行器的太阳能。

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摘要

Flapping Wing Aerial Vehicles (FWAVs) have the capability to combine the benefits of both fixed wing vehicles and rotary vehicles. However, flight time is limited due to limited on-board energy storage capacity. For most Unmanned Aerial Vehicle (UAV) operators, frequent recharging of the batteries is not ideal due to lack of nearby electrical outlets. This imposes serious limitations on FWAV flights. The approach taken to extend the flight time of UAVs was to integrate photovoltaic solar cells onto different structures of the vehicle to harvest and use energy from the sun. Integration of the solar cells can greatly improve the energy capacity of an UAV; however, this integration does effect the performance of the UAV and especially FWAVs. The integration of solar cells affects the ability of the vehicle to produce the aerodynamic forces necessary to maintain flight. This PhD dissertation characterizes the effects of solar cell integration on the performance of a FWAV. Robo Raven, a recently developed FWAV, is used as the platform for this work. An additive manufacturing technique was developed to integrate photovoltaic solar cells into the wing and tail structures of the vehicle. An approach to characterizing the effects of solar cell integration to the wings, tail, and body of the UAV is also described. This approach includes measurement of aerodynamic forces generated by the vehicle and measurements of the wing shape during the flapping cycle using Digital Image Correlation. Various changes to wing, body, and tail design are investigated and changes in performance for each design are measured. The electrical performance from the solar cells is also characterized. A new multifunctional performance model was formulated that describes how integration of solar cells influences the flight performance. Aerodynamic models were developed to describe effects of solar cell integration force production and performance of the FWAV. Thus, performance changes can be predicted depending on changes in design. Sensing capabilities of the solar cells were also discovered and correlated to the deformation of the wing. This demonstrated that the solar cells were capable of: (1) Lightweight and flexible structure to generate aerodynamic forces, (2) Energy harvesting to extend operational time and autonomy, (3) Sensing of an aerodynamic force associated with wing deformation. Finally, different flexible photovoltaic materials with higher efficiencies are investigated, which enable the multifunctional wings to provide enough solar power to keep the FWAV aloft without batteries as long as there is enough sunlight to power the vehicle.
机译:扑翼飞行器(FWAV)具有结合固定翼飞行器和旋转飞行器的优势的能力。但是,由于机载储能能力有限,飞行时间受到限制。对于大多数无人驾驶飞机(UAV)运营商而言,由于附近没有电源插座,因此不希望对电池进行频繁的充电。这对FWAV飞行施加了严重的限制。延长无人机飞行时间的方法是将光伏太阳能电池集成到车辆的不同结构上,以收集和利用来自太阳的能量。太阳能电池的集成可以大大提高无人机的能量容量;但是,这种集成确实会影响无人机的性能,尤其是FWAV。太阳能电池的集成会影响车辆产生维持飞行所需的空气动力的能力。该博士论文描述了太阳能电池集成对FWAV性能的影响。最近开发的FWAV Robo Raven被用作这项工作的平台。开发了一种增材制造技术,以将光伏太阳能电池集成到车辆的机翼和尾翼结构中。还描述了一种表征太阳能电池集成到无人机机翼,机尾和机体的效果的方法。该方法包括使用数字图像相关性来测量车辆产生的空气动力以及在拍打周期中测量机翼形状。研究机翼,机体和机尾设计的各种变化,并测量每种设计的性能变化。还表征了太阳能电池的电性能。制定了一个新的多功能性能模型,该模型描述了太阳能电池的集成如何影响飞行性能。开发了气动模型来描述太阳能电池集成力产生和FWAV性能的影响。因此,可以根据设计的变化来预测性能变化。还发现了太阳能电池的传感能力,并与机翼的变形相关。这表明太阳能电池能够:(1)轻巧而灵活的结构产生空气动力,(2)收集能量以延长运行时间和自主性,(3)感知与机翼变形有关的空气动力。最后,研究了具有更高效率的不同柔性光伏材料,只要有足够的阳光为车辆提供动力,多功能机翼就能提供足够的太阳能以保持FWAV在没有电池的情况下高空飞行。

著录项

  • 作者

    Perez-Rosado, Ariel.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Mechanical engineering.;Mechanics.;Robotics.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 171 p.
  • 总页数 171
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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