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Stability Analysis of FCHEV Energy System Using Frequency Decoupling Control Method

机译:基于频率解耦控制方法的FCHEV能源系统稳定性分析

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摘要

Fuel cell (FC) is a promising power supply in electric vehicles (EV); however, it has poor dynamic performance and short service life. To address these shortcomings, a super capacitor (SC) is adopted as an auxiliary power supply. In this study, the frequency decoupling control method is used in electric vehicle energy system. High-frequency and low-frequency demand power is provided by SC and FC, respectively, which makes full use of two power supplies. Simultaneously, the energy system still has rapidity and reliability. The distributed power system (DPS) of EV requires DC DC converters to achieve the desired voltage. The stability of cascaded converters must be assessed. Impedance-based methods are effective in the stability analysis of DPS. In this study, closed-loop impedances of interleaved half-bridge DC DC converter and phase-shifted full-bridge DC DC converter based on the frequency decoupling control method are derived. The closed-loop impedance of an inverter for permanent magnet synchronous motor based on space vector modulation control method is also derived. An improved Middlebrook criterion is used to assess and adjust the stability of the energy system. A theoretical analysis and simulation test are provided to demonstrate the feasibility of the energy management system and the control method.
机译:燃料电池(FC)是电动汽车(EV)的有前途的电源;但是,它的动态性能差,使用寿命短。为了解决这些缺点,采用了超级电容器(SC)作为辅助电源。在这项研究中,频率解耦控制方法被用于电动汽车的能源系统中。高频和低频需求功率分别由SC和FC提供,它们充分利用了两个电源。同时,能源系统仍然具有快速性和可靠性。电动汽车的分布式电源系统(DPS)需要DC DC转换器才能达到所需的电压。必须评估级联转换器的稳定性。基于阻抗的方法在DPS的稳定性分析中很有效。本文基于频率解耦控制方法,推导了交错式半桥DC-DC变换器和相移全桥DC-DC变换器的闭环阻抗。还推导了基于空间矢量调制控制方法的永磁同步电动机逆变器的闭环阻抗。改进的Middlebrook准则用于评估和调整能源系统的稳定性。通过理论分析和仿真测试,证明了该能源管理系统和控制方法的可行性。

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