提高电力系统稳定性的未来国标输电系统采用高压直流链路

S. K. Kerahroudi, R. Rabbani, Fan Li, G. Taylor, M. M. Alamuti, M. Bradley
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引用次数: 5

摘要

由于英国可再生能源的快速发展,未来将需要更高的输电能力来整合潜在的大量风力发电。此外,在未来十年,维护输电系统的安全与稳定将变得更加困难。高压直流输电技术的大量应用和现有交流输电系统串联补偿的部署有望在未来提供所需的传输能力。然而,还需要采用更智能的方式来操作这些功率流控制设备。首先,本文研究了直流输电线路改善区域间功率振荡的能力。介绍了功率振荡阻尼控制器的两种设计方法。其次,本文提出了一种新的非参数控制系统设计方法,即采用样本调节器控制设计方法,利用直流输电线路设定点提高系统稳定性。该方法主要适用于大型综合电力系统,因为控制器设计只需要了解电力系统的非参数模型,即开环阶跃响应,与开发电力系统的参数模型相比,这很容易获得。
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Power system stability enhancement of the future GB transmission system using HVDC link
As a consequence of the fast development of renewable energy sources in the UK, higher transmission capacity will be required to integrate potentially large volumes of wind generation in the future. Also, over the next decade, maintaining the transmission system security and stability will become more difficult. A major increase in the application of HVDC transmission technology and the deployment of series compensation within the existing AC transmission system is expected to provide the required transfer capability in the future. However, there is also a need to employ smarter ways of operating these power flow control devices. Firstly, this paper investigates the capability of the HVDC link in improving the inter-area power oscillation damping. Two approaches in the design of power oscillation damping controller are demonstrated. Secondly, the paper presents the application of the HVDC links set-point adoption for the stability enhancement through a novel non-parametric control system design approach using the sample regulator control design method. This method is mainly attractive for applications in large integrated power systems since the controller design only requires knowledge of the nonparametric model of the power system i.e. the open-loop step response, which is easily obtainable compared to development of parametric model of the power system.
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