多电航空发动机控制和硬件在环验证与起动发电机协调

Jun Fang, Tianhong Zhang, Zhaohui Cen, Elias Tsoutsanis
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引用次数: 0

摘要

起动发电机具有起动转矩可控和发电机负载转矩扰动的特点,这给多电航空发动机控制带来了挑战。解决这一问题的关键在于与起动发电机合作的多电航空发动机控制。首先,建立了多电航空发动机模型,包括全状态涡扇发动机模型和起动发电机外部特性模型,前者用于提高低速仿真能力,后者用于提高实时仿真能力。随后,从起动过程、加减速过程和稳态过程等三个过程提出了起动发电机协调多电航空发动机的控制方法。在起动过程中,通过协调起动发电机的扭矩和航空发动机的燃料来控制加速度。在加速/减速过程中,燃料限值根据启动发电机的电力负荷进行调整。在稳态过程中,根据起动发电机的 q 轴电流补偿燃油,以应对负载扭矩干扰。最后,对多电力航空发动机的控制进行了硬件在环仿真实验。结果表明,协调减少了多电航空发动机启动过程中的加速度振荡,增强了其在发电过程中抵抗电力负载波动干扰的能力。
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Multi-Electric Aero Engine Control and Hardware-in-the-Loop Verification with Starter Generator Coordination
The starter generator, characterized by controllable starting torque and disturbance in generator load torque, poses challenges for the multi-electric aero engine control. The key to addressing this issue lies in multi-electric aero engine control with the collaboration of a starter generator. Firstly, a multi-electric aero engine model is established, comprising a full-state turbofan engine model to enhance low-speed simulation capability and an external characteristic model of a starter generator to improve real-time simulation capability. Subsequently, the control methods for a multi-electric aero engine with starter generator coordination are proposed in three processes, including the starting process, acceleration/deceleration process, and steady-state process. During the starting process, the acceleration is controlled by coordinating the torque of the starter generator and the fuel of the aero engine. During the acceleration/deceleration process, the fuel limit value is adjusted based on the electrical load of the starter generator. During the steady-state process, the fuel is compensated based on the q-axis current of the starting generator in response to load torque disturbance. Finally, hardware-in-the-loop simulation experiments are conducted for the control of a multi-electric aero engine. The results show that the coordination reduces the oscillation of the acceleration during the startup of a multi-electric aero engine, enhancing its ability to resist disturbances from electrical load fluctuations during power generation.
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