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Design Space Exploration Study and Optimization of a Distributed Turbo-Electric Propulsion System for a Regional Passenger Aircraft

机译:支线客机分布式涡轮电动推进系统的设计空间探索与优化

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Electric propulsion systems are considered as one possibility to reach the ambitious goals of the European Union’s Flightpath 2050 with regards to greenhouse gas emissions and noise. It has been claimed in several publications that Distributed Electric Propulsion (DEP) offers significant improvement in aerodynamic efficiency and thus a reduction in structural weight of the wing and noise emissions as well as additional degrees of freedom concerning flight control. To not outweigh those advantages by heavier drivetrains, the components within the electric propulsion system have to be extremely lightweight, efficient and reliable at the same time. The German nationally funded project SynergIE evaluates DEP for a 70 PAX regional reference aircaft with two (SE-2), six (DEP-6) and twelve (DEP-12) propulsion units with a turbo-electric drivetrain layout. This study aims to quantify the effect on the specific block fuel consumption for the different numbers of propulsors based on Top Level Aircraft Requirements (TLARs). The approach contains a coupled electric drivetrain system model which is based on physically derived, analytical models for each component linking specific subdomains, e.g., electromagnetics, structural mechanics and thermal analysis. A genetic algorithm is applied to optimise the key performance indicators (KPIs) of the electric system, before the results are fed back to the aircraft sizing process. It has been identified that constraints such as installation space or architectural decisions such as the number of propulsors have significant influence on the drivetrain weight and efficiency and interact with the whole aircraft sizing process, esp. with reference to nacelle weight and drag and thus the block fuel consumption. The study shows that the DEP-6 and DEP-12 project aircraft both have a potential of reducing the specific block fuel consumption by approx. 4.2 % and 5.8 % respectively in case of direct driven propellers, while for a geared-drive scenario a total reduction of up to 7.6 % in case of DEP-6 and 8.5 % in case of DEP-12 is possible, all compared to the direct-driven baseline (BSL) aircraft SE-2.
机译:电动推进系统被认为是实现欧盟2050年“飞行路线”关于温室气体排放和噪音的宏伟目标的一种可能性。在一些出版物中已经声称,分布式电力推进(DEP)大大提高了空气动力学效率,从而降低了机翼的结构重量和噪声排放,并提高了与飞行控制有关的自由度。为了不超过重型传动系统的优势,电动推进系统内的组件必须同时非常轻便,高效和可靠。由德国国家资助的项目SynergIE对70 PAX区域参考飞机的DEP进行了评估,该飞机具有两个(SE-2),六个(DEP-6)和十二个(DEP-12)推进装置,并采用了涡轮电动传动系统。这项研究的目的是根据最高飞机需求量(TLAR)来量化不同数量推进器对特定组块燃油消耗的影响。该方法包含耦合的电力传动系统系统模型,该模型基于物理推导的,针对链接特定子域的每个组件的分析模型,例如电磁学,结构力学和热分析。在将结果反馈给飞机选型过程之前,应用遗传算法优化电气系统的关键性能指标(KPI)。已经发现,诸如安装空间之类的约束或诸如推进器数量之类的建筑决策对动力传动系统的重量和效率具有重大影响,并且尤其与整个飞机的选型过程相互影响。机舱的重量和阻力,从而降低了油耗。研究表明,DEP-6和DEP-12项目飞机均具有将特定模块燃油消耗降低约5%的潜力。与直接驱动螺旋桨相比,直接驱动螺旋桨分别降低4.2%和5.8%,而对于齿轮传动方案,DEP-6降低多达7.6%,DEP-12降低多达8.5%。直接驱动基线(BSL)飞机SE-2。

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