高动态响应约束下电励磁双凸极发电系统稳态效率提升方法OA
Steady-State Efficiency Improve Method for Doubly Salient Electro-Magnetic Generation Systems under High Dynamic Response Constraints
电励磁双凸极发电机(DSEG)具有结构简单、可靠性高、励磁可调及故障时可快速灭磁等优点,在航空电源领域有着广阔的应用前景.在实际运行中,动态响应提升与稳态效率优化的控制策略之间存在互相矛盾的问题.为解决这一问题,在角度位置控制基础上,基于导通角对励磁电流和电枢电流的影响,提出一种协调控制参数过渡(CCPT)控制方法,在高动态响应约束下最大程度地优化系统稳态效率.通过分析不同工况下协调控制参数对 DSEG 的性能影响,建立稳态工况下 DSEG 效率最优的控制模型和动态过程中提升响应能力的励磁电流瞬变代偿模型.提出基于动态响应约束下稳态效率提升过渡参数簇的 CCPT 控制方法,通过动态工况和稳态工况切换过程中协调控制参数的平滑过渡,实现在高动态响应约束条件下的稳态效率最优控制.最后在一台 12/8 极的电励磁双凸极发电机上进行了实验验证.
The doubly salient electro-magnetic generator(DSEG)is a competitive candidate for the next-generation aircraft DC electrical power system due to its fault-tolerant excitation control and absence of rotor windings.Nevertheless,its application faces a fundamental limitation:a structural conflict between achieving high steady-state efficiency and maintaining rapid dynamic response under strict aviation technical standards.Therefore,this paper proposes a coordination-control-parameter transition(CCPT)strategy based on coordinated current optimization. The impact of coordination control parameters on the performance of the DSEG system is analyzed.A control model for optimal efficiency under steady-state conditions is established,and a field-current transient-compensation model is designed to enhance response capability during dynamic processes.The proposed CCPT control method employs a transition-parameter cluster to enhance steady-state efficiency while meeting dynamic-response constraints.This approach enables smooth transitions of coordination control parameters during shifts between dynamic and steady-state operating modes.Consequently,it achieves optimal steady-state efficiency control without compromising the required high dynamic performance. The loss mechanisms of the DSEG system are investigated.Copper losses,comprising armature and field-winding losses,and core losses,categorized as hysteresis,eddy-current,and excess losses,are modeled via simulations.The results indicate that both copper and core losses vary nonmonotonically with the conduction angle,initially decreasing and then increasing.Thus,an optimal conduction angle can be identified for any given load power,and a steady-state,efficiency-optimal coordination control trajectory is established. Dynamic response optimization is impeded by the large time constant inherent in the field windings.This work introduces a paradigm shift in control strategy by coordinating armature-current control through conduction-angle modulation to compensate for field-current transients.Minimizing the required change in field current during dynamic processes enhances the DSEG system's dynamic response.Furthermore,a parameter cluster is established to define trajectories that minimize variation in field current. The proposed CCPT method identifies the intersection or the nearest points between the steady-state efficiency-optimal parameter trajectory and the dynamic response-optimal parameter cluster.In a steady state,the system operates at the efficiency optimal point.Once a dynamic disturbance is detected,the control smoothly shifts along a predefined dynamic response optimization trajectory within the parameter cluster adjacent to the initial steady-state point.By coordinating adjustments to the conduction angle and field current,the transient in field current is minimized.DC bus voltage can be regulated rapidly with reduced overshoot/undershoot and shorter recovery time.After the dynamic event subsides and a new steady state is established,the control parameters smoothly return along a steady-state efficiency-optimization trajectory to the new optimal efficiency point corresponding to the updated load condition. Experimental validation is conducted on a 12/8-pole DSEG prototype.Compared with diode rectification and fixed-conduction-angle APC control,the proposed CCPT method demonstrates superior performance.Steady-state efficiency is significantly improved across a range of load points.For instance,at a load of 3 kW and a speed of 4 000 r/min,the efficiency increases from approximately 79.46%to 87.03%.More critically,during load transients,the CCPT method reduces the bus voltage dip from 248 V to 252 V to 256 V and shortens the recovery time to 20 ms.During load shedding,it limits the voltage peak to 280 V with a 20 ms recovery time,whereas the other strategies result in peaks of 292 V to 338 V and longer recovery periods. The proposed CCPT control method coordinates parameter scheduling to facilitate smooth transitions between efficiency-optimal and response-optimal operating modes.Simulations and experiments confirm that the CCPT method effectively enhances steady-state efficiency while maintaining,and even improving,dynamic performance under strict aviation technical standards.The CCPT method lays theoretical and practical foundations for applying the DSEG in fields with stringent demands on steady-state efficiency and dynamic response,such as aircraft power generation systems.
王鹏;许彦武;张卓然
南京师范大学电气与自动化工程学院 南京 210023南京师范大学电气与自动化工程学院 南京 210023南京航空航天大学江苏省新能源发电与电能变换高校重点实验室 南京 211106
信息技术与安全科学
电励磁双凸极可控整流稳态效率动态响应协调控制
Doubly salient electro-magnetic generatorcontrolled rectificationsteady-state efficiencydynamic responsecoordinate control
《电工技术学报》 2026 (16)
5465-5479,15
国家自然科学基金(52407055)和江苏省科技重大专项(BG2024039)资助项目.
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