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Power Distribution and Thermal Management Modeling for Electrified Aircraft

机译:电气化飞机配电和热管理建模

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Despite the substantially lower energy per unit mass of batteries compared to hydrocarbon fuels, electrification of the aircraft propulsion system could lead to increases in energy efficiency for certain types of missions. This work builds on the electric powertrain component models (battery, converter, motor) from previous work and presents models for the propulsor, power distribution system, thermal management system (TMS), and wiring in order to complete an all-electric propulsion system framework. This framework is used to simulate a propulsion system with power loads representative of a commuter aircraft mission that transports 19 passengers over 100 nmi. Results show that the battery makes up over 60% of the total propulsion system mass, indicating that improvements in battery technology are essential to lower propulsion system mass. Despite making up a smaller fraction of the propulsion system mass, the other components impact the overall system via their efficiency since that sizes the battery and the TMS. Distributed propulsion is found to lower the propulsion system mass, with diminishing returns beyond 10 propulsors due to the increased heat rejection and hence TMS mass.
机译:尽管与烃燃料相比,每单位单位电池的能量大大降低,但飞机推进系统的电气可能导致某些类型任务的能效增加。这项工作在上一项工作的电动动力系元件型号(电池,转换器,电机)上建立,并为推进器,配电系统,热管理系统(TMS)和布线提供了模型,以完成全电推进系统框架。该框架用于模拟推进系统,该推进系统具有代表通勤飞机使命的电力负荷,将19次乘客运送超过100 NMI。结果表明,电池占推进系统质量总量的60%以上,表明电池技术的改进对于降低推进系统质量是必不可少的。尽管提高了推进系统质量的较小分数,但其他部件通过其效率影响整个系统,因为该电池和TMS尺寸。发现分布推进以降低推进系统质量,由于增加的热排斥和因此TMS质量,减少超过10个推进器的回报。

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