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Static synchronous compensator with superconducting magnetic energy storage for high power utility applications

机译:具有超导磁能存储的静态同步补偿器,适用于大功率公用事业应用

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Power systems security in the case of contingencies is ensured by maintaining adequate "short-term generation reserve". This reserve must be appropriately activated by means of the primary frequency control (PFC). Because the generation is an electro-mechanical process, the primary control reserve controllability is not as fast as required, especially by modern power systems. Since the new improvements achieved on the conventional control methods have not been enough to satisfy the high requirements established, the necessity of enhancing the performance of the PFC has arisen.rnAt present, the new energy storage systems (ESS) are a feasible alternative to store excess energy for substituting for the primary control reserve. In this way, it is possible to combine this new ESS with power converter based flexible ac transmission systems (FACTS). This allows an effective exchange of active power with the electric grid and, thus, enhances the PFC. This paper presents an improved PFC scheme incorporating a static synchronous compensator (STATCOM) coupled with a superconducting magnetic energy storage (SMES) device. A detailed full model and a control algorithm based on a decoupled current control strategy of the enhanced compensator are proposed. The integrated STATCOM/SMES controller topology includes three level, multi-pulse, voltage source inverters (VSI) with phase control and incorporates a two quadrant, three level, dc-dc chopper as the interface between the STATCOM and the SMES coil. A novel three level control scheme is proposed by using concepts of instantaneous power in the synchronous rotating d-q reference frame. The dynamic performance of the presented control algorithms is evaluated through digital simulation performed by using SimPowerSystems of SIMULINK/MATLAB™, and technical analysis is performed to obtain conclusions about the benefits of using SMES devices in the PFC of the electric system. Presently, a laboratory scale prototype device based on digital signal processors (DSP) is being implemented.
机译:通过维持足够的“短期发电储备”来确保应急情况下的电力系统安全。必须通过主频率控制(PFC)适当激活该储备。由于发电过程是机电过程,因此主要控制储备的可控制性不如要求的那么快,特别是在现代电力系统中。由于对传统控制方法的新改进还不足以满足已建立的高要求,因此出现了提高PFC性能的必要性。目前,新的能量存储系统(ESS)是一种可行的替代存储方式多余的能量代替主要控制储备。这样,可以将这种新的ESS与基于功率转换器的灵活交流传输系统(FACTS)结合在一起。这允许与电网有效交换有功功率,从而增强PFC。本文提出了一种改进的PFC方案,该方案结合了静态同步补偿器(STATCOM)和超导磁能存储(SMES)装置。提出了一种基于增强补偿器解耦电流控制策略的详细模型和控制算法。集成的STATCOM / SMES控制器拓扑结构包括具有相位控制的三电平,多脉冲电压源逆变器(VSI),并包含两个象限,三电平,dc-dc斩波器,作为STATCOM和SMES线圈之间的接口。利用同步旋转d-q参考帧中的瞬时功率概念,提出了一种新颖的三电平控制方案。通过使用SIMULINK / MATLAB™的SimPowerSystems执行的数字仿真对所提出的控制算法的动态性能进行评估,并进行技术分析以得出关于在电气系统的PFC中使用SMES器件的好处的结论。当前,正在实现基于数字信号处理器(DSP)的实验室规模的原型设备。

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