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Voltage stability limits for weak power systems with high wind penetration.

机译:具有高风速的弱电系统的电压稳定性极限。

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摘要

Analysis of power system voltage stability has practical value in increasing wind penetration levels. As wind penetration levels increase in power systems, voltage stability challenges arise due to locating wind resources far away from load centers. This dissertation presents several different voltage stability methods for sizing new wind farms. Power system wind penetration levels depend on the available voltage stability margins (VSMs) of the existing power system and system load characteristics. Three new iterative methods have been developed to maximize wind penetration level in weak power systems based on systems' VSMs. The first two methods use an iterative approach for increasing the size of each wind farm until reaching the collapse point. Wind farms with less negative impact on system VSMs are sized larger than others. A third wind farm sizing method has been developed using modal analysis in conjunction with the traditional voltage stability method (Q-V method). Wind farms are placed at buses in the power system which have the lowest negative impact on voltage instability modes (strong wind injection buses). By placing the wind farms at the strongest wind injection buses, higher amounts of wind power can be injected into the power system. To further increase wind penetration in weak power systems, two additional techniques are introduced and applied to the western Kansas power system. The first technique uses modes of voltage instability to place voltage support equipment like static var compensators at locations in the power system where they provide the needed reactive power support for increasing levels of wind penetration. The second technique uses the fact that wind patterns at a wind farm site may rarely allow the wind farm to produce its maximum capacity during the peak loading hours. Wind farm maximum sizes can be increased above their maximum voltage stable size limit without driving the power system into becoming voltage unstable. Preventing voltage collapse for the additional increases in wind farm sizes is accomplished by disconnecting some wind turbines inside the wind farm during critical times to reduce its power output to a voltage stable level.
机译:对电力系统电压稳定性的分析在增加风的渗透水平方面具有实用价值。随着电力系统中风的渗透水平增加,由于将风资源放置在远离负载中心的位置,因此出现了电压稳定性挑战。本文提出了几种不同的电压稳定方法来确定新的风电场规模。电力系统的防风等级取决于现有电力系统的可用电压稳定裕度(VSM)和系统负载特性。已经开发了三种新的迭代方法,以基于系统的VSM在弱电系统中最大化风的渗透水平。前两种方法使用迭代方法来增加每个风电场的规模,直到达到崩溃点。风电场对系统VSM的负面影响较小,而风电场的规模则大于其他风电场。使用模态分析结合传统的电压稳定方法(Q-V方法),开发了第三种风电场选型方法。风电场被放置在电力系统中对电压不稳定性模式具有最小负面影响的母线(强风注入母线)。通过将风力发电场放置在最坚固的注风母排上,可以将更大数量的风能注入到电力系统中。为了进一步增加弱电系统中的风渗透,引入了两项附加技术并将其应用于堪萨斯州西部的电力系统。第一种技术使用电压不稳定模式将电压支持设备(如静态无功补偿器)放置在电力系统中的位置,在这些位置,它们可以提供所需的无功功率支持以增加风的渗透水平。第二种技术利用了这样的事实,即风电场现场的风型可能很少使风电场在高峰负荷时间内产生最大容量。风电场的最大大小可以增加到其最大电压稳定大小限制以上,而不会使电源系统变得电压不稳定。通过在关键时期断开风电场内部的一些风力涡轮机以将其功率输出降低到电压稳定水平,可以防止风电场规模进一步增加而导致电压崩溃。

著录项

  • 作者

    Tamimi, Ala.;

  • 作者单位

    Kansas State University.;

  • 授予单位 Kansas State University.;
  • 学科 Engineering Electronics and Electrical.;Energy.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 361 p.
  • 总页数 361
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:44:15

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