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Hybrid-Electric Propulsion for Aircraft

机译:飞机混合动力推进

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摘要

Against a background of increasing energy demand and rising fuel prices, hybrid-electric propulsion systems (HEPS) have the potential to significantly reduce fuel consumption in the aviation industry, particularly in the lighter sectors. By taking advantage of both Electric Motor (EM) and Internal Combustion Engine (ICE), HEPS provide not only a benefit in fuel saving but also a reduction in take-off noise and the emission levels. This research considers the design and sizing process of a hybrid-electric propulsion system for a single-seat demonstrator aircraft, the experimental derivation of the ICE map and the EM parameters. In addition to the experimental data, a novel modeling approach including several linked desktop PC software packages is presented to analyze and optimize hybrid-electric technology for aircraft. Further to the analysis of a parallel hybrid-electric, mid-scale aircraft, this paper also presents a scaling approach for a 20 kg UAV and a 50 tonne inter-city airliner. At the smaller scale, two different mission profiles are analyzed: an ISR mission profile, where the simulation routine optimizes the component size of the hybrid-electric propulsion system with respect to fuel saving, and a maximum duration profile; where the flight endurance is determined as a function of payload weight. At the larger scale, the performance of a 50 tonne inter-city airliner is modeled, based on a hybrid-electric gas-turbine, assuming a range of electric boost powers and battery masses.
机译:在能源需求增加和燃料价格上涨的背景下,混合动力推进系统(HEPS)有潜力显着减少航空业,特别是轻型行业的燃料消耗。通过同时利用电动机(EM)和内燃机(ICE),HEPS不仅可以节省燃料,还可以降低起飞噪声和排放水平。这项研究考虑了用于单座演示飞机的混合动力推进系统的设计和尺寸确定过程,ICE图和EM参数的实验推导。除了实验数据,还提出了一种新颖的建模方法,其中包括几个链接的台式PC软件包,以分析和优化飞机的混合电动技术。在对并行混合动力中型飞机进行分析之后,本文还提出了一种20千克无人机和50吨城际客机的缩放方法。在较小的规模上,分析了两个不同的任务配置文件:一个ISR任务配置文件,其中模拟例程在节省燃料方面优化了混合动力推进系统的组件大小,以及最大持续时间配置文件;飞行续航力取决于有效载荷重量的函数。在更大的规模上,基于混合动力燃气轮机,对50吨城际客机的性能进行了建模,并假设了一系列的电动助力功率和电池质量。

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