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Regenerative electric power for More Electric Aircraft

机译:更多电动飞机的再生电力

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The More Electric Aircraft (MEA) emphasizes the utilization of electrical power as opposed to hydraulic, pneumatic, and mechanical power for optimizing aircraft performance and life cycle cost. The main sources of regenerative energy in the more electric aircraft power distribution system are the aircraft actuation systems: ailerons, rudder, flaps, spoilers, horizontal stabilizers and others. Instead of dissipating the energy as heat, the regenerative electric energy from the motor drives can be stored in energy storage elements such as flywheels, ultra-capacitors and batteries. Using the Simcaps toolbox, an aileron model with the electro-mechanical actuator (EMA) is developed in Matlab/Simulink. This regenerative power system consisting of a synchronous generator, three-phase-to dc boost rectifier, EMA including an input filter, ESE and a bidirectional dc-dc converter interfacing with ESE is presented. A single-phase half-bridge bidirectional dc-dc converter is used in this configuration. Two power management control strategies are applied in this simulation study, load-leveling and load-following procedures. In both strategies, ESE compensates for the difference between the electric drive requirements and the power provided by power distribution bus. Considering some important factors, such as weight, size and durability of the ESE, the load-following control strategy appears to be the most suitable for a regenerative power system in the more electric aircraft.
机译:“更多电动飞机”(MEA)强调利用电力而不是液压,气动和机械动力来优化飞机性能和生命周期成本。电动飞机配电系统中再生能量的主要来源是飞机驱动系统:副翼,方向舵,襟翼,扰流板,水平稳定器等。代替将能量作为热量耗散,可以将来自电动机驱动器的再生电能存储在飞轮,超级电容器和电池之类的储能元件中。使用Simcaps工具箱,在Matlab / Simulink中开发了带有机电促动器(EMA)的副翼模型。提出了一种由同步发电机,三相至直流升压整流器,包括输入滤波器的EMA,ESE和与ESE接口的双向DC-DC转换器组成的再生电源系统。此配置中使用了单相半桥双向DC-DC转换器。在此仿真研究中应用了两种功率管理控制策略,即负载均衡和负载跟踪程序。在这两种策略中,ESE都会补偿电驱动要求和配电总线提供的功率之间的差异。考虑到一些重要因素,例如ESE的重量,尺寸和耐用性,负荷跟踪控制策略似乎最适合于电动飞机中的再生动力系统。

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