Inverter Intensive Hybrid Power Plant Modeling With Small-Signal Stability Augmentation Through Flexible Operation Mode Transition

IF 4.9 2区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Journal of Emerging and Selected Topics in Power Electronics Pub Date : 2024-07-24 DOI:10.1109/JESTPE.2024.3432850
Lizhi Ding;Junhui Zhang;Xiaonan Lu;Shuan Dong;Andy Hoke;Jin Tan
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Abstract

Hybrid power plants (HPPs) prompt the penetration of inverter-based renewable energy sources (RESs) in transmission systems; however, given their low-inertia nature, HPPs are dominated by power electronic inverters, so there are inevitable challenges in system stability when increasing numbers of HPPs are integrated into the modern power grids. To boost the penetration level of HPPs without jeopardizing system stability, it is desirable to equip them with operational characteristics (i.e., grid-forming (GFM) capabilities) that are comparable to those of conventional power plants dominated by synchronous generators (SGs). In this article, a holistic model of inverter intensive HPP is derived and a bilevel hierarchical control is developed to allow HPPs to flexibly switch among the designed operation modes (i.e., P-Q, P-V, and isochronous modes). Compared to SGs, which have limited controllability, the operation mode of each HPP could vary as requested. Such flexible mode transitions could be integrated into the secondary plant-level control and be leveraged as an additional control degree to further augment system stability. Further, the system small-signal stability margin is quantified with varying HPP operation modes. More importantly, modal analysis is thereby conducted to quantify the impacts of mode transition on the system oscillatory modes. The effectiveness of the proposed HPP bilevel hierarchical control is verified using extensive case studies based on the simplified real-world island power grid, and the results validate that the system small-signal stability margin can be enhanced with the additional degree of control flexibility enabled by HPP operation mode transition. The real-time hardware-in-the-loop (HIL) results are also provided to verify the proposed method.
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通过灵活的运行模式转换增强小信号稳定性的逆变器密集型混合发电厂建模
混合动力发电厂(HPPs)促进了基于逆变器的可再生能源(RESs)在输电系统中的渗透;然而,由于其低惯性特性,以电力电子逆变器为主,因此当越来越多的HPPs并入现代电网时,系统稳定性将不可避免地面临挑战。为了在不影响系统稳定性的情况下提高高压电站的渗透水平,需要为其配备与同步发电机(SGs)主导的传统发电厂相当的运行特性(即电网形成(GFM)能力)。在本文中,推导了逆变器密集型HPP的整体模型,并开发了双层分层控制,以允许HPP在设计的运行模式(即P-Q, P-V和等时模式)之间灵活切换。与可控能力有限的SGs相比,每个HPP的运行模式可以根据需要变化。这种灵活的模式转换可以集成到二级工厂级控制中,并作为额外的控制程度来进一步增强系统的稳定性。进一步,对不同HPP运行模式下的系统小信号稳定裕度进行了量化。更重要的是,通过模态分析来量化模态转换对系统振荡模态的影响。基于简化的现实孤岛电网的大量案例研究验证了所提出的HPP双层分层控制的有效性,结果验证了HPP运行模式转换所带来的额外控制灵活性可以增强系统的小信号稳定裕度。最后给出了硬件在环(HIL)实时测试结果,验证了所提方法的正确性。
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来源期刊
CiteScore
12.50
自引率
9.10%
发文量
547
审稿时长
3 months
期刊介绍: The aim of the journal is to enable the power electronics community to address the emerging and selected topics in power electronics in an agile fashion. It is a forum where multidisciplinary and discriminating technologies and applications are discussed by and for both practitioners and researchers on timely topics in power electronics from components to systems.
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