Academic literature on the topic 'Intentional controlled islanding'

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Journal articles on the topic "Intentional controlled islanding"

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Babaei, Mehdi, and Ahmed Abu-Siada. "Intentional Controlled Islanding Strategy for Wind Power Plant Integrated Systems." Energies 16, no. 12 (2023): 4572. http://dx.doi.org/10.3390/en16124572.

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The concept of intentional controlled islanding (ICI) is introduced as a proactive measure to safeguard the power system against blackouts in the event of significant disturbances. It involves strategically partitioning the system into self-healing islands, thereby mitigating the impact of such disturbances. This study introduces a new framework for creating stable, controlled islands in power systems with large-scale wind power plants. The proposed islanding strategy takes into account the impact of wind power plants on the coherency grouping of generators as a constraint in the ICI problem.
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Babaei, Mehdi, S. M. Muyeen, and Syed Islam. "Transiently stable intentional controlled islanding considering post-islanding voltage and frequency stability constraints." International Journal of Electrical Power & Energy Systems 127 (May 2021): 106650. http://dx.doi.org/10.1016/j.ijepes.2020.106650.

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Quiros-Tortos, Jairo, Panayiotis Demetriou, Mathaios Panteli, Elias Kyriakides, and Vladimir Terzija. "Intentional Controlled Islanding and Risk Assessment: A Unified Framework." IEEE Systems Journal 12, no. 4 (2018): 3637–48. http://dx.doi.org/10.1109/jsyst.2017.2773837.

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XU, Shaoxiang, and Shihong MIAO. "Three-stage method for intentional controlled islanding of power systems." Journal of Modern Power Systems and Clean Energy 6, no. 4 (2017): 691–700. http://dx.doi.org/10.1007/s40565-017-0348-2.

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Alexis, Kyriacou, Demetriou Panayiotis, Panayiotou Christos, and Kyriakides Elias. "Controlled Islanding Solution for Large-Scale Power Systems." IEEE Transactions on Power Systems 33, no. 2 (2017): 1591–602. https://doi.org/10.5281/zenodo.1012320.

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Intentional Controlled Islanding (ICI) has been proposed as a corrective measure of last resort to split the power system into several sustainable islands and prevent cascading outages. This paper proposes a novel ICI algorithm based on a Linear Programming (LP) formulation that directly determines an islanding solution with minimal power-flow disruption for any given number of islands, while ensuring that each island contains only coherent generators. In addition, the proposed algorithm enables operators to constrain any transmission line to be exc
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Panayiotis, Demetriou, Quirós-Tortós Jairo, and Kyriakides Elias. "When to island for Blackout Prevention." IEEE Systems Journal 13, no. 3 (2018): 3326–36. https://doi.org/10.1109/JSYST.2018.2866937.

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Cascading outages leading to large-area blackouts can be mitigated using intentional controlled islanding (ICI). An ICI scheme must define the most suitable time to split the system after a severe contingency (i.e., when to island), as well as to quickly determine the set of branches to be disconnected to create stable islands (i.e., where to island). Most of the works in the literature, however, focus on the latter and little has been done to address the “when to island” problem. To fill this gap, this paper proposes a unified methodology to determine the most suitable moment for
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Panayiotis, Demetriou, Asprou Markos, and Kyriakides Elias. "A Real-Time Controlled Islanding and Restoration Scheme Based on Estimated States." IEEE Transactions on Power Systems 34, no. 1 (2018): 9. https://doi.org/10.1109/TPWRS.2018.2866900.

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Power system operators are facing major challenges today to keep the system operating at the admissible limits. Recent blackouts demonstrated the need for a systematic study and design of a comprehensive system control strategy. Intentional controlled islanding (ICI) has been proposed as an effective corrective control action of final resort to save the system from a partial or a complete blackout. ICI limits the occurrence and consequences of blackouts by splitting the power system into a group of smaller, stable, and sustainable subsystems, also called islands. After a controlled system sepa
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Grozdanovski, Jovancho, Rafael Mihalic, and Urban Rudez. "WAMS-Supported Power Mismatch Optimization for Secure Intentional Islanding." Energies 14, no. 10 (2021): 2790. http://dx.doi.org/10.3390/en14102790.

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It is expected that a coordinated operation of several system integrity protection schemes will become a necessity in the future. This research represents an innovative strategy for coordinating under-frequency load shedding and intentional controlled islanding schemes for improving electric power system stability and resilience. In the great majority of real-world cases, both approaches follow conventional tactics, i.e., disconnecting a fixed number of feeders at predefined frequency thresholds and isolating a predefined area of a power system regardless of the actual conditions. Under the ne
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Fernández-Porras, Pablo, Mathaios Panteli, and Jairo Quirós-Tortós. "Intentional controlled islanding: when to island for power system blackout prevention." IET Generation, Transmission & Distribution 12, no. 14 (2018): 3542–49. http://dx.doi.org/10.1049/iet-gtd.2017.1526.

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Llonch-Masachs, Marc, Daniel Heredero-Peris, Cristian Chillón-Antón, Daniel Montesinos-Miracle, and Roberto Villafáfila-Robles. "Impedance Measurement and Detection Frequency Bandwidth, a Valid Island Detection Proposal for Voltage Controlled Inverters." Applied Sciences 9, no. 6 (2019): 1146. http://dx.doi.org/10.3390/app9061146.

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Anti-islanding detection methods have been part of a secure operation for distributed energy resource inverters, avoiding the creation of non-intentional energization when the mains are lost. These detection mechanisms were conceived historically for current-controlled inverters. New control possibilities have broken ground, and current- or voltage-controlled inverters are a reality; however, special attention must be paid to detection strategies when applied to the latter ones. This paper addresses two topics: it exposes the lack of effectiveness of those detection algorithms based on the vol
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Dissertations / Theses on the topic "Intentional controlled islanding"

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Norris, Sean William. "Preventing wide area blackouts in transmission systems : a new approach for intentional controlled islanding using power flow tracing." Thesis, Durham University, 2014. http://etheses.dur.ac.uk/10713/.

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A novel method to reduce the impact of wide area blackouts in transmission networks is presented. Millions of customers are affected each year due to blackouts. Splitting a transmission system into smaller islands could significantly reduce the effect of these blackouts. Large blackouts are typically a result of cascading faults which propagate throughout a network where Intentional Controlled Islanding (ICI) has the advantage of containing faults to smaller regions and stop them cascading further. Existing methodologies for ICI are typically calculated offline and will form pre-determined isl
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Conference papers on the topic "Intentional controlled islanding"

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Quiros-Tortos, Jairo, Vladimir Terzija, Mathaios Panteli, and Peter A. Crossley. "On evaluating the performance of intentional controlled islanding schemes." In 2013 IEEE Power & Energy Society General Meeting. IEEE, 2013. http://dx.doi.org/10.1109/pesmg.2013.6672423.

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Fernandez-Porras, Pablo, Mathaios Panteli, and Jairo Quiros-Tortos. "A risk-based methodology for defining the time of intentional controlled islanding." In 2015 IEEE PES Innovative Smart Grid Technologies Latin America (ISGT LATAM). IEEE, 2015. http://dx.doi.org/10.1109/isgt-la.2015.7381263.

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Demetriou, Panayiotis, Alexis Kyriacou, Elias Kyriakides, and Christos Panayiotou. "Intentional Controlled Islanding of Power Systems Equipped With Battery Energy Storage Systems." In 2019 IEEE Milan PowerTech. IEEE, 2019. http://dx.doi.org/10.1109/ptc.2019.8810501.

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Babaei, Mehdi, S. M. Muyeen, and Syed Islam. "The Impact of Number of Partitions on Transient Stability of Intentional Controlled Islanding." In 2019 IEEE International Conference on Environment and Electrical Engineering and 2019 IEEE Industrial and Commercial Power Systems Europe (EEEIC / I&CPS Europe). IEEE, 2019. http://dx.doi.org/10.1109/eeeic.2019.8783457.

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Librandi, Mariano Dominguez, Daniel Stenzel, Thomas Wurl, et al. "Frequency Stability of Intentional Controlled Islanding Scheme in the Future European Synchronous Transmission Grid." In 2021 IEEE Madrid PowerTech. IEEE, 2021. http://dx.doi.org/10.1109/powertech46648.2021.9494977.

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