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A developed control strategy for mitigating wind power generation transients using superconducting magnetic energy storage with reactive power support

机译:一种采用无功功率支持的超导磁储能技术来减轻风力发电瞬变的控制策略

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The fast variations of wind speed during extreme wind gusts result in fluctuations in both generated power and the voltage of power systems connected to wind energy conversion system (WECS). This paper presents a control strategy which has been tested out using two scenarios of wind gusts. The strategy is based on active and reactive powers controls of superconducting magnetic energy storage (SMES). The WECS includes squirrel cage induction generator (SCIG) with shunt connected capacitor bank to improve the power factor. The SMES system consists of step down transformer, power conditioning unit, DC-DC chopper, and large inductance superconducting coil. The WECS and SMES are connected at the point of common coupling (PCC). Fuzzy logic controller (FLC) is used with the DC-DC chopper to control the power transfer between the grid and SMES coil. The FLC is designed so that the SMES can absorb/deliver active power from/to the power system. Moreover, reactive power is controlled to regulate the voltage profile of PCC. Two inputs are applied to the FLC; the wind speed and SMES current to control the amount active and reactive power generated by SMES. The proposed strategy is simulated in MATLAB/Simulinlc. The proposed control strategy of SMES is robust, as it successfully controlled the PCC voltage, active and reactive powers during normal wind speeds and for different scenarios of wind gusts. The PCC voltage was regulated at 1.0 pu for the two studied scenarios of wind gusts. The fluctuation ranges of real power delivered to the grid were decreased by 53.1% for Scenario #1 and 56.53% for Scenario #2. The average reactive power supplied by the grid to the wind farm were decreased by 27.45% for Scenario #1 and 31.13% for Scenario #2. (C) 2016 Elsevier Ltd. All rights reserved.
机译:极端阵风期间风速的快速变化会导致发电量和连接到风能转换系统(WECS)的电力系统的电压波动。本文提出了一种控制策略,该策略已使用两种阵风场景进行了测试。该策略基于超导磁能存储(SMES)的有功和无功功率控制。 WECS包括带有并联电容器组的鼠笼式感应发电机(SCIG),以提高功率因数。 SMES系统由降压变压器,功率调节单元,DC-DC斩波器和大电感超导线圈组成。 WECS和SMES在公共耦合点(PCC)处连接。模糊逻辑控制器(FLC)与DC-DC斩波器一起使用,以控制电网与SMES线圈之间的功率传输。 FLC的设计使SMES可以吸收电力系统中的有功功率或将其提供给电力系统。此外,控制无功功率以调节PCC的电压曲线。两个输入应用于FLC;风速和SMES电流来控制SMES产生的有功功率和无功功率。所提出的策略在MATLAB / Simulinlc中进行了仿真。所提出的SMES控制策略是稳健的,因为它可以在正常风速和阵风的不同情况下成功控制PCC电压,有功和无功功率。对于两种研究的阵风场景,PCC电压均调节为1.0 pu。方案1和方案2分别减少了53.1%和56.53%的实际有功功率波动范围。方案1的电网提供给风电场的平均无功功率减少了27.45%,方案2的平均无功功率减少了31.13%。 (C)2016 Elsevier Ltd.保留所有权利。

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