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Aircraft electric propulsion technology review – A shift from turbofan to the ethrust era

机译:飞机电动推进技术评论 - 从涡手机到ethrust时代的转变

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Following the electrification trend observed in the automotive industry, the idea of an electric propulsion aircraft has also drawn attention and investments from a range of aviation industry stakeholders (including the world's largest aerospace companies) focused on both fuel burning reduction and environmental performance improvement (greenhouse gases (GHG), pollutants and noise emissions) potential of electric propulsion technology. Electric propulsion has the potential to provide more efficient, cleaner, quieter and more profitable aviation services, with potential benefits to both airlines and passengers. Furthermore, with its inherent quiet feature, it has also the potential to lead to a reassessment of the role of airports along the world cities, as well as revitalize regional short-haul flights and helps the launch of air service into underserved regions around the world. From a technical perspective, the aviation propulsion electrification strategy might involves the integration of electric powetrains into aircrafts into the i) all electric; ii) hybrid and iii) turboelectric approach. The former might rely solely on batteries as energy sources and requires engines up to 300 times more powerful than current available electric aviation motors (currently used for two-seater prototypes). The hybrid configuration uses gas turbines, for turbofan propulsion, and to charge batteries (with turbogenerators), which also provides energy for electric propulsion for one or more phases of flight. Finally, turboelectric configurations do not rely on batteries to supply propulsion energy. Rather, they use gas turbines to drive electric generators to feed distributed electric driven fans, with their inherent aerodynamic benefits associated with distributed propulsion. Hybrid architectures might provide a more realistic near-term pathway, while key enabling technologies - batteries, high power electric motors and superconducting electric power - reach the required improvement, into an expected 10 to 20 year timeframe. The most likely niche of the industry to first commercially launch this groundbreaking technology is the commuter and regional jet category, with a 50 to 70 passenger capacity and a short to mid range. This work is supposed to present an overview of aircraft electric propulsion technology, followed by an assessment of its potential operational, environmental and economic benefits, as well as the required technological breakthrough to reach the electric thrust era.
机译:在汽车行业中观察到的电气化趋势之后,电动推进飞机的想法也引起了一系列航空工业利益相关者(包括世界上最大的航空航天公司)的关注和投资,专注于燃料燃烧和环境绩效改进(温室电力推进技术的气体(温室气体),污染物和噪声排放量。电动推进具有潜力,提供更有效,更清洁,更安静,更有利可图的航空服务,对航空公司和乘客提供潜在的利益。此外,由于其固有的安静特征,它还有可能导致机场沿世界城市的作用,并振兴区域短途航班,并帮助将空运服务推进世界各地的服务不足地区。从技术角度来看,航空推进电气化策略可能涉及将电力的整合到I的飞机中的所有电气; ii)杂交和III)涡轮电解方法。前者可以单独依赖电池作为能源,并且需要比当前可用的电气航空电机更强大的发动机300倍(目前用于两座原型)。混合配置使用燃气轮机,用于涡轮机推进,并充电电池(用涡轮发电机),这也为一个或多个飞行阶段提供电动推进的能量。最后,涡轮电配置不依赖于电池来供应推进能量。相反,它们使用燃气轮机驱动发电机以馈送分布式电动风扇,其固有的空气动力学益处与分布式推进相关。混合架构可能提供更现实的近期途径,而关键可以启用技术 - 电池,高电动电动机和超导电力 - 达到所需的改进,进入预期的10至20年的时间框架。行业最有可能首次商业推出这种开创性技术的利基是通勤和区域喷射类别,乘客容量为50至70个乘客容量和短到中档。这项工作应该概述了飞机电力推进技术,然后评估其潜在的运营,环境和经济效益,以及所需的技术突破到达电动推力时代。

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