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On parallel hybrid-electric propulsion system for unmanned aerial vehicles

机译:用于无人机的并联混合动力推进系统

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摘要

This paper presents a review of existing and current developments and the analysis of Hybrid-Electric Propulsion Systems (HEPS) for small fixed-wing Unmanned Aerial Vehicles (UAVs). Efficient energy utilisation on an UAV is essential to its functioning, often to achieve the operational goals of range, endurance and other specific mission requirements. Due to the limitations of the space available and the mass budget on the UAV, it is often a delicate balance between the onboard energy available (i.e. fuel) and achieving the operational goals. One technology with potential in this area is with the use of HEPS.ududIn this paper, information on the state-of-art technology in this field of research is provided. A description and simulation of a parallel HEPS for a small fixed-wing UAV by incorporating an Ideal Operating Line (IOL) control strategy is described. Simulation models of the components in a HEPS were designed in the MATLAB Simulink environment. An IOL analysis of an UAV piston engine was used to determine the most efficient points of operation for this engine. The results show that an UAV equipped with this HEPS configuration is capable of achieving a fuel saving of 6.5%, compared to the engine-only configuration.
机译:本文介绍了现有和当前的发展,以及对小型固定翼无人飞行器(UAV)的混合动力推进系统(HEPS)的分析。无人机的有效能量利用对于其功能至关重要,通常是实现航程,续航力和其他特定任务要求的目标。由于无人驾驶飞机可用空间和大量预算的限制,通常在机载可用能量(即燃料)和实现运营目标之间达到微妙的平衡。在此领域中,具有潜力的一项技术是使用HEPS。 ud ud本文提供了有关该研究领域的最新技术的信息。描述并结合了理想操作线(IOL)控制策略的小型固定翼无人机的并行HEPS的描述和仿真。在MATLAB Simulink环境中设计了HEPS中组件的仿真模型。无人机活塞发动机的IOL分析用于确定该发动机的最有效运行点。结果表明,与仅采用发动机的配置相比,配备有这种HEPS配置的无人机能够实现6.5%的燃油节省。

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