Solid State Switching Control Methods: A Bibliometric Analysis for Future Directions
Abstract
:1. Introduction
- A brief overview of SSS is provided with respect to the number of papers published to date. The analysis is conducted on a year-on-year basis and includes the discussion.
- The rating of SSS is evaluated using the number of cited papers, the journal with the most reported papers, the most prolific authors, the most productive university, and the country dominating the publication.
- The interesting keywords and topics used for content analysis and gaps are examined.
- The document types of publications including conference papers, articles, books, and reviews are explored. An analysis of the number of document types is performed. Additionally, the impact factors and distribution publisher by the journals are studied.
- The extent of collaboration among researchers is identified. The team is evaluated using the number of authors in the papers and the cooperation between various universities and countries.
- The most prominent and influential authors, universities/institutions/companies, and countries contributing the most published work are determined. This is vital for discovering the productivity of authors, organizations, and countries in publishing as well as for increasing the production of research and collaboration between authors.
- To provide an insight into the history and development of SSS research.
- To provide an overview of SSS that will extend the current knowledge and practice.
- To improve the understanding and ideas of SSS, recognize its research community and identify its trends.
2. Surveying Methods
- (1)
- Selection Process of Papers
- A total of 838 solid-state breaker papers were found, spanning the years from 1922 to 2021.
- 138 papers were collected based on application, control, protection switch, and limitations from 2010 to 2021.
- 112 papers were chosen based on Engineering and English subjects.
- 57 papers were obtained after screening based on abstracts, related subjects, and overlapped keywords.
- (2)
- Record Identified Within 6 Keywords
- (3)
- Review Findings
- Surveying approaches were described in detail based on including or excluding data, the screening process, the research trend, data extraction, and study characteristics and outcomes.
- The analytical discussion focused on publication trends and citation structures, keywords analysis, topics analysis, document type, and authorship assessment.
- Identified the issues and suggestions on system failure by fault, control method, SSS implementation design, and system’s protection for further advancement of SSS field.
2.1. Criteria for Inclusion and Exclusion
- The suitability of research techniques for analysis was considered in more detail, including or excluding data. Bibliometric analysis of papers was sorted from the Scopus database. The 120 papers were analyzed based on the following constraints:
- The papers were based on the “solid state switching” which was used with six keywords separately during the search, including solid state breaker, solid state transfer switch, static transfer switch, automatic transfer switch, automatic protection switch, and solid state protection switch. The research investigated the terms of the application, control, and protection switch for each keyword.
- The papers were selected in the limited years between 2010 and 2021.
- Engineering is considered only for scientific fields and English was chosen.
2.2. Screening Procedures
- In the Scopus database after primary search for “solid state breaker, solid state transfer switch, static transfer switch, automatic transfer switch, automatic protection switches, and solid-state protection switch”, a different number of articles was found. It covered a different period.
- The first screening was limited to the “application”, “control”, and “protection switch”.
- The second screening was carried out in a restricted time between 2010 and 2021.
- The third screening involved the selection of the subject Engineering.
- The fourth screening in English was limited to the Scopus database.
- The last screening was conducted using all keywords by evaluating the appropriate title, abstract, keywords, relevant content, and contributions for practical topics and selecting 120 papers.
2.3. Research Trend
2.4. Data Extraction
2.5. Study Characteristics and Outcomes
3. Analytical Discussion
- To study the publication trends and citations structure of papers
- Analysis of paper’s keywords
- Analysis of paper’s topics
- To study journal evaluation
- To study the authorship, universities, and countries evaluation.
3.1. Publication Trends and Citation Structures
3.2. Analysis of Keywords and Topics
- Today’s SSCB-system research requirements are more important than previous mechanical switches due to their suitability in DC systems and higher operating speed [38].
- Instead of using a mechanical switch, the researchers focused on using SSCB for high-efficiency switching applications. SSCBs are capable of achieving optimal quick switching times and power transfer to sensitive loads [12]. Several keywords, such as DC fault protection, fault protection for HVDC are suggested as alternatives to the SCCB scope analysis.
- The advent of WBG-type semiconductors, such as silicon carbide, as demonstrated by Shen, Z.J. et al. [59], have recently been proven to be particularly advantageous in the development of switching devices. WBG devices are used as drop-in silicon to enhance the power converter, which has been redesigned over decades. It provides a compelling growth opportunity in the future.
3.3. Document Type Evaluation
3.4. Document Authorship Evaluation
4. Conclusions and Future Directions
- The fault problem becomes the main issue in the system, which can lead to system failure [36]. Before the fault is cleared, the system has to endure considerable voltage surges. Voltage surges must be handled by the system to clear the fault. It takes time for the mechanical switches to clear the fault in the system. In the SSS system, solid state circuit breakers (SSCBs) can be a promising choice. Solid state circuit breakers provide no reliability or lifetime issues as opposed to electromechanical circuit breakers. The study identified that SSS demonstrated the potential of power semiconductor technology used in distribution systems. SSS is receiving attention due to its quick response time and excellent operational advantages over conventional mechanical circuit breakers. The use of semiconductors in switching devices also can be developed in application areas such as high-voltage, high-frequency, and high-power applications [59]. Thus, solid state switch will greatly impact the industry moving forward.
- The papers evaluate the control method in the SSS area to protect design conditions, identify faults, and protect the system [43]. Hence, it is important to offer careful considerations to systems control in wide distributed DC networks. Conventional module circuit breakers (MCCBs) have a slow response time and are prone to damage the equipment in the DC system. To solve this issue, making use of solid-state circuit breaker (SSCB) based DC safety allows for much faster downstream speed (1 millisecond up to a microsecond range). For SCCB, insulated gate bipolar transistors and integrated gate-commutated thyristor are widely used as main static switches in SSCBs [92]. Instead of using an electromechanical circuit breaker, a solid state type of power switching circuit is being developed as a new power control system for DC power networks [58,103]. An article from [73] addresses the lack of control system for DC systems due to faults arise quickly and lower impedance in DC systems. For conventional AC systems, faults in VDC evolve ten times faster and need a faster response. The existing solid state circuit breaker switches are suggested to address this problem.
- The static transfer switch is composed of power semiconductor devices. In contrast to mechanical switches, it provides better characteristics such as high number in switching operation, lower arc forming, fast switching, and no audible ticking sounds [64,141]. Furthermore, an article [83] implies that thyristor has low forward conduction and it is not suitable for high-power applications. The high-power needs a considerable amount of localized heat dissipation in the semiconductor. This issue can be solved by improving the design of GTO technology, noticeably the integrated gate-commutated thyristor (IGCT). This significantly increases the dynamic efficiency of the GTO, increasing the overall efficiency of the system. Furthermore, the articles [76,91] imply that mechanical circuit breakers (MCB) do not follow the specifications in voltage source converter-based multi-terminal DC (VSC-MTDC) due to natural current zero-crossing and slow response. This can be solved by designation in the solid-state circuit breakers, such as IGBT, IEGT, and IGCT. The reliability offered by SSCB is ultrafast. Finally, HDCCB, which is MCB and SSCB, has low switching losses and fast switching can be regarded as a promising option for fixing DC faults.
- System protection is the most important for solid state switching, as it applies to all delivery modes [73]. The fault current distribution system is rapidly growing, so faster protection is required [43]. Therefore, SSS needs a protection scheme to avoid equipment failure due to faults [92]. For a reliable switching application, the protection fault identification and protection coordination programs and circuit breakers must detect faults to protect against abnormal conditions and initiate protection [43,56,66,137,138]. SSCBs should be examined in distribution networks to ensure that the SSS mechanism is safe. A preliminary test has been conducted on various lab prototypes and products with respect to fault identification and protection response [54,55,56,57,75,88,91,109,116,133].
- A bibliometric analysis would provide researchers with a great deal of knowledge about which journals in the SSS areas are likely to publish research papers.
- This paper presents highly cited papers and other possible articles for useful characteristics and significant switching analyses. Awareness of the characteristics of the highly cited papers can give some insights into significant developments in solid state switching. Citation review can be useful to the editorial board and potential writers, reviewers by offering some inputs on what kinds of papers tend to interest the researcher. It also gives writers clues about what creates a contribution to being one of the most cited papers.
- The keywords can help to find current research papers in the past. It also reflects the scope of relevant articles that have been published in SSS papers. It is expected that the promotion of research keywords will clarify the various phenomena in the switching field.
- This analysis provides the easiest way to examine and interpret the manuscript submitted to the journal publishers and editors.
- The growth of scientific collaborations and the performance of various authors, universities, and countries creates a huge mutual association. The authors and co-authors must make an innovative, descriptive, or empirical observation with the long-standing profession to get the article published. International collaboration encourages publications with higher citation counts in less advanced countries. Moreover, the developed countries often benefit from international collaboration.
Author Contributions
Funding
Conflicts of Interest
References
- Zhang, X.; Yu, Z.; Zhao, B.; Chen, Z.; Lv, G.; Huang, Y.; Zeng, R. A Novel Mixture Solid-State Switch Based on IGCT with High Capacity and IGBT with High Turn-off Ability for Hybrid DC Breakers. IEEE Trans. Ind. Electron. 2020, 67, 4485–4495. [Google Scholar] [CrossRef]
- Rodrigues, R.; Du, Y.; Antoniazzi, A.; Cairoli, P. A Review of Solid-State Circuit Breakers. IEEE Trans. Power Electronics 2021, 36, 364–377. [Google Scholar] [CrossRef]
- Ludin, G.A.; Amin, M.A.; Matayoshi, H.; Rangarajan, S.S.; Hemeida, A.M.; Takahashi, H.; Senjyu, T. Solid-state dc circuit breakers and their comparison in modular multilevel converter based-hvdc transmission system. Electronics 2021, 10, 1204. [Google Scholar] [CrossRef]
- Álvarez, C.; Alamar, J.; Blasco-Giménez, R.; Montenegro, A. Solid state devices for protection in distribution systems. A new proposal for solid state transfer switch (SSTS). In Proceedings of the International Conference on Harmonics and Quality of Power, ICHQP, Orlando, FL, USA, 1–4 October 2000; pp. 456–461. [Google Scholar]
- Prigmore, J.; Tcheslavski, G.; Bahrim, C. An IGCT-based electronic circuit breaker design for a 12.47 kV distribution system. In Proceedings of the IEEE PES General Meeting, PES, Minneapolis, MN, USA, 25–27 July 2010; pp. 1–5. [Google Scholar]
- Zhang, H.S. Research on an Electro-Mechanical Hybrid Power Controller. Adv. Mater. Res. 2010, 121–122, 878–881. [Google Scholar] [CrossRef]
- Kwan, K.H.; So, P.L.; Chu, Y.C. An output regulation-based unified power quality conditioner with Kalman filters. IEEE Trans. Ind. Electron. 2012, 59, 4248–4262. [Google Scholar] [CrossRef]
- Guerrero, J.M.; Chandorkar, M.; Lee, T.L.; Loh, P.C. Advanced control architectures for intelligent microgridspart Part I: Decentralized and hierarchical control. IEEE Trans. Ind. Electron. 2013, 60, 1254–1262. [Google Scholar] [CrossRef] [Green Version]
- Yao, J.; Abramovitz, A.; Wang, Y.; Weng, H.; Zhao, J. Safe-triggering-region control scheme for suppressing cross current in static transfer switch. Electr. Power Syst. Res. 2015, 125, 245–253. [Google Scholar] [CrossRef]
- Mollik, M.S.; Hannan, M.A.; Ker, P.J.; Faisal, M.; Rahman, M.S.A.; Mansur, M.; Lipu, M.S.H. Review on solid-state transfer switch configurations and control methods: Applications, operations, issues, and future directions. IEEE Access 2020, 8, 182490–182505. [Google Scholar] [CrossRef]
- Bălan, H.; Neamț, L.; Buzdugan, M.I.; Varodi, T.; Pop, E. Fault current limiter with solid-state circuit breakers. IOP Conf. Ser. Mater. Sci. Eng. 2016, 144, 012001. [Google Scholar] [CrossRef] [Green Version]
- Wan, X.; Gan, Y.; Zhang, F.; Yu, Y.; Yuan, H.; Wang, H.; Zhao, C. Design of a medium voltage AC fast solid-state transfer switch. In Proceedings of the IEEE International Symposium on Power Electronics for Distributed Generation Systems, Xi’an, China, 22 August 2019; pp. 1036–1402. [Google Scholar]
- Mokhtari, H.; Dewan, S.B.; Iravani, M.R. Performance evaluation of thyristor based static transfer switch. IEEE Trans. Power Deliv. 2000, 15, 960–966. [Google Scholar] [CrossRef]
- Meral, M.E.; Teke, A.; Bayindir, K.C.; Tumay, M. Power quality improvement with an extended custom power park. Electr. Power Syst. Res. 2009, 79, 1553–1560. [Google Scholar] [CrossRef]
- Bortoluzzi, M.; de Souza, C.C.; Furlan, M. Bibliometric analysis of renewable energy types using key performance indicators and multicriteria decision models. Renew. Sustain. Energy Rev. 2021, 143, 110958. [Google Scholar] [CrossRef]
- Choi, W.; Kim, J.; Lee, S.E.; Park, E. Smart home and internet of things: A bibliometric study. J. Clean. Prod. 2021, 301, 126908. [Google Scholar] [CrossRef]
- Tseng, M.-L.; Chang, C.-H.; Lin, C.-W.R.; Wu, K.-J.; Chen, Q.; Xia, L.; Xue, B. Future trends and guidance for the triple bottom line and sustainability: A data driven bibliometric analysis. Environ. Sci. Pollut. Res. 2020, 27, 33543–33567. [Google Scholar] [CrossRef] [PubMed]
- Hamidah, I.; Pawinanto, R.E.; Mulyanti, B.; Yunas, J. A bibliometric analysis of micro electro mechanical system energy harvester research. Heliyon 2021, 7, e06406. [Google Scholar] [CrossRef]
- Ismail, S.A.; Ang, W.L.; Mohammad, A.W. Electro-Fenton technology for wastewater treatment: A bibliometric analysis of current research trends, future perspectives and energy consumption analysis. J. Water Process. Eng. 2021, 40, 101952. [Google Scholar] [CrossRef]
- Gingras, Y. Bibliometrics and Research Evaluation: Uses and Abuses; The MIT Press: Cambridge, MA, USA, 2016; ISBN 978-0262035125. [Google Scholar]
- Andrés, A. Measuring Academic Research; Chandos Publishing: Cambridge, UK, 2010; ISBN 978-1-84334-528-2. [Google Scholar]
- de Freitas, F.G.; de Souza, J.T. Ten Years of Search Based Software Engineering: A Bibliometric Analysis. Int. Symp. Search Based Softw. Eng. 2011, 6956, 18–32. [Google Scholar]
- Wang, Q.; Yang, Z.; Yang, Y.; Long, C.; Li, H. A bibliometric analysis of research on the risk of engineering nanomaterials during 1999–2012. Sci. Total Environ. 2014, 473–474, 483–489. [Google Scholar] [CrossRef] [PubMed]
- Ibrahim, A.-B.M.A.; Julius, R.; Choudhury, P.K. Progress in quantum electronics research: A bibliometric analysis. J. Electromagn. Waves Appl. 2020, 35, 549–565. [Google Scholar] [CrossRef]
- Cancino, C.; Merigó, J.M.; Coronado, F.; Dessouky, Y.; Dessouky, M. Forty years of Computers & Industrial Engineering: A bibliometric analysis. Comput. Ind. Eng. 2017, 113, 614–629. [Google Scholar]
- Shukla, A.K.; Janmaijaya, M.; Abraham, A.; Muhuri, P.K. Engineering applications of artificial intelligence: A bibliometric analysis of 30 years (1988–2018). Eng. Appl. Artif. Intell. 2019, 85, 517–532. [Google Scholar] [CrossRef]
- Belter, C.W.; Seidel, D.J. A bibliometric analysis of climate engineering research. Wiley Interdiscip. Rev. Clim. Chang. 2013, 4, 417–427. [Google Scholar] [CrossRef]
- Meerow, S.; Newell, J.P. Resilience and Complexity: A Bibliometric Review and Prospects for Industrial Ecology. J. Ind. Ecol. 2015, 19, 236–251. [Google Scholar] [CrossRef]
- Vogel, R.; Güttel, W.H. The Dynamic Capability View in Strategic Management: A Bibliometric Review. Int. J. Manag. Rev. 2013, 15, 426–446. [Google Scholar] [CrossRef]
- Yeo, W.; Kim, S.; Park, H.; Kang, J. A bibliometric method for measuring the degree of technological innovation. Technol. Forecast. Soc. Chang. 2015, 95, 152–162. [Google Scholar] [CrossRef]
- Baker, N.C.; Ekins, S.; Williams, A.J.; Tropsha, A. A bibliometric review of drug repurposing. Drug Discov. Today 2018, 23, 661–672. [Google Scholar] [CrossRef] [PubMed]
- Ruttenstock, E.; Friedmacher, F.; Höllwarth, M.E.; Coran, A.G.; Puri, P. The 100 most-cited articles in Pediatric Surgery International. Pediatr. Surg. Int. 2012, 28, 563–570. [Google Scholar] [CrossRef]
- Walsh, C.; Lydon, S.; Byrne, D.; Madden, C.; Fox, S.; O’Connor, P. The 100 Most Cited Articles on Healthcare Simulation: A Bibliometric Review. Simul. Healthc. 2018, 13, 211–220. [Google Scholar] [CrossRef]
- Cabeza, L.F.; Chàfer, M.; Mata, É. Comparative Analysis of Web of Science and Scopus on the Energy Efficiency and Climate Impact of Buildings. Energies 2020, 13, 409. [Google Scholar] [CrossRef] [Green Version]
- Borri, E.; Tafone, A.; Zsembinszki, G.; Comodi, G.; Romagnoli, A.; Cabeza, L.F. Recent Trends on Liquid Air Energy Storage: A Bibliometric Analysis. Appl. Sci. 2020, 10, 2773. [Google Scholar] [CrossRef]
- Li, X.; Song, Q.; Liu, W.; Rao, H.; Xu, S.; Li, L. Protection of nonpermanent faults on DC overhead lines in MMC-based HVDC systems. IEEE Trans. Power Deliv. 2013, 28, 483–490. [Google Scholar] [CrossRef]
- Park, J.-D.; Candelaria, J. Fault detection and isolation in low-voltage dc-bus microgrid system. IEEE Trans. Power Deliv. 2013, 28, 779–787. [Google Scholar] [CrossRef]
- Wang, Z.; Shi, X.; Xue, Y.; Tolbert, L.M.; Blalock, B.J.; Wang, F. Design and performance evaluation of overcurrent protection schemes for silicon carbide (SiC) power MOSFETs. In Proceedings of the 2013 IEEE Energy Conversion Congress and Exposition, Denver, CO, USA, 15–19 September 2013; pp. 5418–5425. [Google Scholar]
- Cheek, J.; Garnham, B.; Quan, J. What’s in a number? Issues in providing evidence of impact and quality of research(ers). Qual. Health Res. 2006, 16, 423–435. [Google Scholar] [CrossRef] [PubMed]
- Lefaivre, K.A.; Shadgan, B.; O’Brien, P.J. 100 Most Cited Articles in Orthopaedic Surgery. Clin. Orthop. Relat. Res. 2011, 469, 1487. [Google Scholar] [CrossRef] [Green Version]
- Komatsu, M. Approach and basic evaluation for the DC circuit breaker with fault current limiting feature. In Proceedings of the International Telecommunications Energy Conference, Austin, TX, USA, 23–27 October 2016; pp. 1–5. [Google Scholar]
- Emhemed, A.A.S.; Fong, K.; Fletcher, S.; Burt, G.M. Validation of fast and selective protection scheme for an LVDC distribution network. IEEE Trans. Power Deliv. 2017, 32, 1432–1440. [Google Scholar] [CrossRef] [Green Version]
- Qi, L.L.; Antoniazzi, A.; Raciti, L.; Leoni, D. Design of Solid-State Circuit Breaker-Based Protection for DC Shipboard Power Systems. IEEE J. Emerg. Sel. Top. Power Electron. 2017, 5, 260–268. [Google Scholar] [CrossRef]
- Mobarez, M.; Kashani, M.G.; Chavan, G.; Bhattacharya, S. A novel control approach for protection of multi-terminal VSC based HVDC transmission system against DC faults. In Proceedings of the IEEE Energy Conversion Congress and Exposition, Montreal, QC, Canada, 20–24 September 2015; pp. 4208–4213. [Google Scholar]
- Ilyushin, P.; Suslov, K. Operation of automatic transfer switches in the networks with distributed generation. In Proceedings of the 2019 IEEE Milan PowerTech, Milan, Italy, 23–27 June 2019; pp. 1–6. [Google Scholar]
- Panetta, S. Design of arc Flash protection system using solid state switch, photo detection, with parallel impedance. In Proceedings of the 2013 IEEE IAS Electrical Safety Workshop, Dallas, TX, USA, 11–15 March 2013; pp. 211–213. [Google Scholar]
- Pouresmaeil, E.; Akorede, M.F.; Hojabri, M. A hybrid algorithm for fast detection and classification of voltage disturbances in electric power systems. Eur. Trans. Electr. Power 2011, 21, 555–564. [Google Scholar] [CrossRef]
- Pfitscher, L.L.; Bernardon, D.P.; Canha, L.N.; Montagner, V.F.; Abaide, A.R.; Saldanha, J.J.A. A methodology for real time analysis of parallelism of distribution networks. Electr. Power Syst. Res. 2013, 105, 1–8. [Google Scholar] [CrossRef]
- Chowdhury, D.; Hossain, M.F.; Miah, M.S.; Hossain, M.M.; Sheikh, M.N.U.; Rahman, M.M.; Hasan, M.M. Design and Implementation of a Switching Converters Based Power System for Regions Victim to Frequent Power Outage. In Proceedings of the IEEE Southeastcon, St. Petersburg, FL, USA, 19–22 April 2018. [Google Scholar]
- Shen, Z.J.; Miao, Z.; Roshandeh, A.M. Solid state circuit breakers for DC micrgrids: Current status and future trends. Int. Conf. Direct Curr. Microgrids 2015, 228–233. [Google Scholar]
- Cuzner, R.M.; Singh, V. Future Shipboard MVdc System Protection Requirements and Solid-State Protective Device Topological Tradeoffs. IEEE J. Emerg. Sel. Top. Power Electron. 2017, 5, 244–259. [Google Scholar] [CrossRef]
- Miao, Z.; Sabui, G.; Roshandeh, A.M.; Shen, Z.J. Design and Analysis of DC Solid-State Circuit Breakers Using SiC JFETs. IEEE J. Emerg. Sel. Top. Power Electron. 2016, 4, 863–873. [Google Scholar] [CrossRef]
- Vodyakho, O.; Widener, C.; Steurer, M.; Neumayr, D.; Edrington, C.; Bhattacharya, S.; Mirzaee, H. Development of solid-state fault isolation devices for future power electronics-based distribution systems. In Proceedings of the 2011 Twenty-Sixth Annual IEEE Applied Power Electronics Conference and Exposition (APEC), Fort Worth, TX, USA, 6–11 March 2011; pp. 113–118. [Google Scholar]
- Nasereddine, R.; Amor, I.; Massoud, A.; Brahim, L.B. AC solid state circuit breakers for fault current limitation in distributed generation. In Proceedings of the 2013 7th IEEE GCC Conference and Exhibition (GCC), Doha, Qatar, 17–20 November 2013; pp. 446–449. [Google Scholar]
- Pei, X.; Smith, A.C.; Cwikowski, O.; Barnes, M. Hybrid DC circuit breaker with coupled inductor for automatic current commutation. Int. J. Electr. Power Energy Syst. 2020, 120, 106004. [Google Scholar] [CrossRef]
- Xu, X.; Chen, W.; Tao, H.; Zhou, Q.; Li, Z.; Zhang, B. Design and Experimental Verification of an Efficient SSCB Based on CS-MCT. IEEE Trans. Power Electron. 2020, 35, 11682–11693. [Google Scholar] [CrossRef]
- Palaniappan, K.; Sedano, W.; Hoeft, N.; Cuzner, R.; Shen, Z.J. Fault discrimination using SiC JFET based self-powered solid state circuit breakers in a residential DC community microgrid. In Proceedings of the IEEE Energy Conversion Congress and Exposition, Cincinnati, OH, USA, 1–5 October 2017; pp. 3747–3753. [Google Scholar]
- Komatsu, M. Basic evaluation for the dc circuit breaker using power semiconductor with fault current limiting feature. In Proceedings of the International Telecommunications Energy Conference, Broadbeach, QLD, Australia, 22–26 October 2017; pp. 113–120. [Google Scholar]
- Shen, Z.J.; Sabui, G.; Miao, Z.; Shuai, Z. Wide-bandgap solid-state circuit breakers for DC power systems: Device and circuit considerations. IEEE Trans. Electron. Devices 2015, 62, 294–300. [Google Scholar] [CrossRef]
- Magnusson, J.; Saers, R.; Liljestrand, L.; Engdahl, G. Separation of the energy absorption and overvoltage protection in solid-state breakers by the use of parallel varistors. IEEE Trans. Power Electron. 2014, 29, 2715–2722. [Google Scholar] [CrossRef]
- Agostini, F.; Vemulapati, U.; Torresin, D.; Arnold, M.; Rahimo, M.; Antoniazzi, A.; Raciti, L.; Pessina, D.; Suryanarayana, H. 1 MW bi-directional DC solid state circuit breaker based on air cooled reverse blocking-IGCT. In Proceedings of the 2015 IEEE Electric Ship Technologies Symposium (ESTS), Old Town Alexandria, VA, USA, 21–24 June 2015; pp. 287–292. [Google Scholar]
- Li, B.; He, J.; Li, Y.; Li, R. A Novel Solid-State Circuit Breaker with Self-Adapt Fault Current Limiting Capability for LVDC Distribution Network. IEEE Trans. Power Electron. 2019, 34, 3516–3529. [Google Scholar] [CrossRef]
- Yazdanpanahi, H.; Xu, W.; Li, Y.W. A novel fault current control scheme to reduce synchronous DG’s impact on protection coordination. IEEE Trans. Power Deliv. 2014, 29, 542–551. [Google Scholar] [CrossRef]
- Costa, L.; Buticchi, G.; Liserre, M. A Fault-Tolerant Series-Resonant DC-DC Converter. IEEE Trans. Power Electron. 2017, 32, 900–905. [Google Scholar] [CrossRef] [Green Version]
- Liu, F.; Liu, W.; Zha, X.; Yang, H.; Feng, K. Solid-state circuit breaker snubber design for transient overvoltage suppression at bus fault interruption in low-voltage DC microgrid. IEEE Trans. Power Electron. 2017, 32, 3007–3021. [Google Scholar] [CrossRef]
- Ji, S.; Laitinen, M.; Huang, X.; Sun, J.; Giewont, W.; Wang, F.; Tolbert, L.M. Short-Circuit Characterization and Protection of 10-kV SiC mosfet. IEEE Trans. Power Electron. 2019, 34, 1755–1764. [Google Scholar] [CrossRef]
- Cuzner, R.M.; Esmaili, D.A. Fault tolerant shipboard MVDC architectures. In Proceedings of the 2015 International Conference on Electrical Systems for Aircraft, Railway, Ship Propulsion and Road Vehicles (ESARS), Aachen, Germany, 3–5 March 2015; pp. 1–6. [Google Scholar]
- Wang, L.; Feng, B.; Wang, Y.; Wu, T.; Lin, H. Bidirectional Short-Circuit Current Blocker for DC Microgrid Based on Solid-State Circuit Breaker. Electronics 2020, 9, 306. [Google Scholar] [CrossRef] [Green Version]
- Rodrigues, R.; Jiang, T.; Du, Y.; Cairoli, P.; Zheng, H. Solid state circuit breakers for shipboard distribution systems. In Proceedings of the 2017 IEEE Electric Ship Technologies Symposium (ESTS), Arlington, VA, USA, 14–17 August 2017; pp. 406–413. [Google Scholar]
- Song, Q.; Zeng, R.; Yu, Z.; Liu, W.; Huang, Y.; Yang, W.; Li, X. A modular multilevel converter integrated with DC circuit breaker. IEEE Trans. Power Deliv. 2018, 33, 2502–2512. [Google Scholar] [CrossRef]
- Zia, M.F.; Elbouchikhi, E.; Benbouzid, M. Microgrids energy management systems: A critical review on methods, solutions, and prospects. Appl. Energy 2018, 222, 1033–1055. [Google Scholar] [CrossRef]
- Hernandez, J.C.; Sutil, F.S.; Vidal, P.G. Protection of a multiterminal DC compact node feeding electric vehicles on electric railway systems, secondary distribution networks, and PV systems. Turk. J. Electr. Eng. Comput. Sci. 2016, 24, 3123–3143. [Google Scholar] [CrossRef]
- Peng, C.; Huang, A.Q. A protection scheme against DC faults VSC based DC systems with bus capacitors. In Proceedings of the 2014 IEEE Applied Power Electronics Conference and Exposition, Fort Worth, TX, USA, 16–20 March 2014; pp. 3423–3428. [Google Scholar]
- Song, Q.; Zhao, B.; Li, J.; Liu, W. An Improved DC Solid State Transformer Based on Switched Capacitor and Multiple-Phase-Shift Shoot-Through Modulation for Integration of LVDC Energy Storage System and MVDC Distribution Grid. IEEE Trans. Ind. Electron. 2018, 65, 6719–6729. [Google Scholar] [CrossRef]
- Vodyakho, O.; Steurer, M.; Neumayr, D.; Edrington, C.S.; Karady, G.; Bhattacharya, S. Solid-state fault isolation devices: Application to future power electronics-based distribution systems. IET Electr. Power Appl. 2011, 5, 521–528. [Google Scholar] [CrossRef] [Green Version]
- Castellan, S.; Menis, R.; Tessarolo, A.; Luise, F.; Mazzuca, T. A review of power electronics equipment for all-electric ship MVDC power systems. Int. J. Electr. Power Energy Syst. 2018, 96, 306–323. [Google Scholar] [CrossRef] [Green Version]
- Ahn, S.H.; Ryoo, H.J.; Gong, J.W.; Jang, S.R. Robust design of a solid-state pulsed power modulator based on modular stacking structure. IEEE Trans. Power Electron. 2015, 30, 2570–2577. [Google Scholar] [CrossRef]
- Song, G.; Wang, T.; Hussain, K.S.T. DC Line Fault Identification Based on Pulse Injection from Hybrid HVDC Breaker. IEEE Trans. Power Deliv. 2019, 34, 271–280. [Google Scholar] [CrossRef]
- Suvorov, A.; Borovikov, Y.; Gusev, A.; Sulaymanov, A.; Andreev, M.; Ruban, N.; Ufa, R. Increase in simulation accuracy of self-starting motors used for relay protection and automatic equipment. Electr. Eng. 2016, 99, 959–968. [Google Scholar] [CrossRef]
- Munasib, S.; Balda, J.C. Short-circuit protection for low-voltage DC microgrids based on solid-state circuit breakers. In Proceedings of the 2016 IEEE 7th International Symposium on Power Electronics for Distributed Generation Systems (PEDG), Vancouver, BC, Canada, 27–30 June 2016. [Google Scholar]
- Cairoli, P.; Qi, L.; Tschida, C.; Ramanan, R.R.V.; Raciti, L.; Antoniazzi, A. High Current Solid State Circuit Breaker for DC Shipboard Power Systems. In Proceedings of the 2019 IEEE Electric Ship Technologies Symposium (ESTS), Washington, DC, USA, 14–16 August 2019; pp. 468–476. [Google Scholar]
- Mokhberdoran, A.; Carvalho, A.; Silva, N.; Leite, H.; Carrapatoso, A. Design and implementation of fast current releasing DC circuit breaker. Electr. Power Syst. Res. 2017, 151, 218–232. [Google Scholar] [CrossRef]
- Song, X.; Huang, A.Q.; Lee, M.C.; Peng, C. Theoretical and Experimental Study of 22 kV SiC Emitter Turn-OFF (ETO) Thyristor. IEEE Trans. Power Electron. 2017, 32, 6381–6393. [Google Scholar] [CrossRef]
- He, J.; Zhang, D.; Torrey, D. David Torrey Recent Advances of Power Electronics Applications in More Electric Aircrafts. In Proceedings of the AIAA/IEEE Electric Aircraft Technologies Symposium, Cincinnati, OH, USA, 12–14 July 2018; pp. 1–6. [Google Scholar]
- Gu, C.; Wheeler, P.; Castellazzi, A.; Watson, A.J.; Effah, F. Semiconductor Devices in Solid-State/Hybrid Circuit Breakers: Current Status and Future Trends. Energies 2017, 10, 495. [Google Scholar] [CrossRef]
- Li, H.; Zhou, J.; Liu, Z.; Xu, D. Solid state DC circuit breaker for super uninterruptible power supply. In Proceedings of the International Power Electronics and Application Conference and Exposition, Shanghai, China, 5–8 November 2014; pp. 1230–1235. [Google Scholar]
- Bhat, K.P.; Guo, Y.B.; Xu, Y.; Baltis, T.; Hazelmyer, D.R.; Hopkins, D.C. Results for an Al/AlN composite 350 °C SiC solid-state circuit breaker module. In Proceedings of the Conference Proceedings IEEE Applied Power Electronics Conference and Exposition APEC, Orlando, FL, USA, 5–9 February 2012; pp. 2492–2498. [Google Scholar]
- Zhou, Y.; Feng, Y.; Liu, T.; Shen, Z.J. A Digital-Controlled SiC-Based Solid State Circuit Breaker with Soft-Start Function for DC Microgrids. In Proceedings of the IEEE International Symposium on Power Electronics for Distributed Generation Systems, Charlotte, NC, USA, 25–28 June 2018; pp. 1–6. [Google Scholar]
- Liu, W.; Yang, H.; Liu, F.; Sun, J.; Zha, X. An improved RCD snubber for solid-state circuit breaker protection against bus fault in low-voltage DC microgrid. In Proceedings of the International Future Energy Electronics Conference, Taipei, Taiwan, 1–4 November 2015; pp. 1–6. [Google Scholar]
- Qi, L.; Cairoli, P.; Pan, Z.; Tschida, C.; Wang, Z.; Ramanan, V.R.; Raciti, L.; Antoniazzi, A. Solid-State Circuit Breaker Protection for DC Shipboard Power Systems: Breaker Design, Protection Scheme, Validation Testing. IEEE Trans. Ind. Appl. 2020, 56, 952–960. [Google Scholar] [CrossRef]
- Wei, T.; Yu, Z.; Chen, Z.; Zhang, X.; Wen, W.; Huang, Y.; Zeng, R. Design and test of the bidirectional solid-state switch for an 160kV/9kA hybrid DC circuit breaker. In Proceedings of the IEEE Applied Power Electronics Conference and Exposition, San Antonio, TX, USA, 4–8 March 2018; pp. 141–148. [Google Scholar]
- He, D.; Xiong, Z.; Lei, Z.; Shuai, Z.; Shen, Z.J.; Wang, J. Design optimisation of self-powered gate driver for ultra-fast DC solid-state circuit breakers using SiC JFETs. IET Power Electron. 2017, 10, 2149–2156. [Google Scholar] [CrossRef]
- Roshandeh, A.M.; Miao, Z.; Danyial, Z.A.; Feng, Y.; Shen, Z.J. Cascaded operation of SiC JFETs in medium voltage solid state circuit breakers. In Proceedings of the IEEE Energy Conversion Congress and Exposition, Milwaukee, WI, USA, 18–22 September 2016; pp. 1–7. [Google Scholar]
- Demetriades, G.D.; Hermansson, W.; Svensson, J.R.; Papastergiou, K.; Larsson, T. DC-breaker for a multi-megawatt Battery Energy Storage System. In Proceedings of the International Power Electronics Conference, IPEC-Hiroshima, Hiroshima, Japan, 18–21 May 2014; pp. 1220–1226. [Google Scholar]
- Marroquí, D.; Blanes, J.M.; Garrigós, A.; Gutiérrez, R. Self-Powered 380 v DC SiC Solid-State Circuit Breaker and Fault Current Limiter. IEEE Trans. Power Electron. 2019, 34, 9600–9608. [Google Scholar] [CrossRef]
- Liao, X.; Li, H.; Yao, R.; Huang, Z.; Wang, K. Voltage Overshoot Suppression for SiC MOSFET-Based DC Solid-State Circuit Breaker. IEEE Trans. Compon. Packag. Manuf. Technol. 2019, 9, 649–660. [Google Scholar] [CrossRef]
- Wang, S.; Song, Z.; Fu, P.; Li, H. Conceptual design of bidirectional hybrid DC circuit breaker for quench protection of the CFETR. IEEE Trans. Appl. Supercond. 2018, 28. [Google Scholar] [CrossRef]
- Cramond, J.S.; Carreras, A.; Duong, V.G. Protections to consider with Automatic Bus Transfer Scheme. In Proceedings of the Annual Conference for Protective Relay Engineers, College Station, TX, USA, 8–11 April 2013; pp. 11–23. [Google Scholar]
- Kim, S.; Kim, S.N.; Dujic, D. Extending Protection Selectivity in DC Shipboard Power Systems by Means of Additional Bus Capacitance. IEEE Trans. Ind. Electron. 2020, 67, 3673–3683. [Google Scholar] [CrossRef]
- Wang, R.; Zhang, B.; Zhao, S.; Liang, L.; Chen, Y. Design of an IGBT-series-based Solid-State Circuit Breaker for Battery Energy Storage System Terminal in Solid-State Transformer. In Proceedings of the Annual Conference of the IEEE Industrial Electronics Society, Lisbon, Portugal, 14–17 October 2019; pp. 6677–6682. [Google Scholar]
- Yaqobi, M.A.; Matayoshi, H.; Danish, M.S.S.; Lotfy, M.E.; Howlader, A.M.; Tomonobu, S. Low-Voltage Solid-State DC Breaker for Fault Protection Applications in Isolated DC Microgrid Cluster. Appl. Sci. 2019, 9, 723. [Google Scholar] [CrossRef] [Green Version]
- Sa’ed, J.A.; Quraan, M.; Abu-Khaizaran, M.; Favuzza, S.; Massaro, F. Control of solid-state fault current limiter for DG-integrated distribution systems. In Proceedings of the IEEE Industrial and Commercial Power Systems Europe, Milan, Italy, 6–9 June 2017; pp. 1–5. [Google Scholar]
- Mani, P.K.; Naidu, K.S. Improvement of power quality using custom power devices. ARPN J. Eng. Appl. Sci. 2015, 10, 3555–3560. [Google Scholar]
- Valente, V.; Demosthenous, A. CMOS analog power meter and delay line for automatic efficiency optimization in medical power transmitters. In Proceedings of the IEEE International Conference on Electronics, Circuits, and Systems, Abu Dhabi, United Arab Emirates, 9–12 December 2013; pp. 249–252. [Google Scholar]
- Zhang, L.; Sen, S.; Huang, A.Q. 7.2-kV/60-A Austin SuperMOS: An Intelligent Medium-Voltage SiC Power Switch. IEEE J. Emerg. Sel. Top. Power Electron. 2020, 8, 6–15. [Google Scholar] [CrossRef]
- Yang, M.-T.; Gu, J.-C. Optimal Coordination of Automatic Line Switches for Distribution Systems. Energies 2012, 5, 1150–1174. [Google Scholar] [CrossRef]
- Bal, S.; Chatterjee, P.; Gajanayake, C.J.; Maswood, A.I.; Gupta, A.K. Design considerations of bidirectional SiC based DC solid-state power controller for MEA systems. In Proceedings of the Annual Conference of the IEEE Industrial Electronics Society, Washington, DC, USA, 21–23 October 2018; pp. 5745–5752. [Google Scholar]
- Zhou, Y.; Feng, Y.; Shen, Z.J. IBreaker: Intelligent Tri-mode Solid State Circuit Breaker Technology. In Proceedings of the IEEE International Power Electronics and Application Conference and Exposition, Shenzhen, China, 4–7 November 2018; pp. 1–6. [Google Scholar]
- Feng, Y.; Zhou, Y.; Shen, Z.J. SiC solid state circuit breaker with an adjustable current-time tripping profile. In Proceedings of the IEEE Applied Power Electronics Conference and Exposition, San Antonio, TX, USA, 4–8 March 2018; pp. 1968–1973. [Google Scholar]
- Rubino, L.; Rubino, G.; Marino, P.; Di Noia, L.P.; Rubino, L.; Rubino, G.; Marino, P.; Noia, L.P. Di Smart Solid State Circuit Breaker for Photo Voltaic Power Plants. Int. Rev. Electr. Eng. 2017, 12, 409–423. [Google Scholar]
- Qi, L.; Antoniazzi, A.; Raciti, L.; Leoni, D.; Kim, H. Solid state circuit breaker based DC shipboard distribution protection. In Proceedings of the IET Conference Publications, Kuala Lumpur, Malaysia, 14–15 November 2016; Volume 2016, pp. 1–6. [Google Scholar]
- Zhang, Z.; Ma, B.; Friberg, A. Thyristor working as Arc Eliminator protecting electrical apparatus in low voltage power system. In Proceedings of the IEEE International Conference on Industrial Technology, Seville, Spain, 17–19 March 2015; pp. 1216–1219. [Google Scholar]
- Qi, L.; Cairoli, P.; Pan, Z.; Tschida, C.; Wang, Z.; Ramanan, V.R.; Raciti, L.; Antoniazzi, A. SSCB Protection for DC Shipboard Power Systems: Breaker Design, Protection Scheme, Validation Testing. In Proceedings of the Industry Applications Society Annual Meeting, Baltimore, MD, USA, 29 September–3 October 2019; pp. 1–6. [Google Scholar]
- Berg, S.J.K.; Giannakis, A.; Peftitsis, D. Analytical design considerations for MVDC solid-state circuit breakers. In Proceedings of the European Conference on Power Electronics and Applications, Genova, Italy, 3–5 September 2019; pp. 1–6. [Google Scholar]
- Tapia, L.; Baraia-Etxaburu, I.; Valera, J.J.; Sanchez-Ruiz, A.; Abad, G. Design of a Solid-State Circuit Breaker for a DC Grid-Based Vessel Power System. Electronics 2019, 8, 953. [Google Scholar] [CrossRef] [Green Version]
- Murugan, A.K.; Prabu, R.R. Modeling and simulation of thirty bus system employing solid state circuit breaker. In Proceedings of the International Conference on Emerging Trends in Electrical Engineering and Energy Management, Chennai, India, 13–15 December 2012; pp. 98–103. [Google Scholar]
- Fratean, A.; Dobra, P. Control strategies for decreasing energy costs and increasing self-consumption in nearly zero-energy buildings. Sustain. Cities Soc. 2018, 39, 459–475. [Google Scholar] [CrossRef]
- Ma, H.; Gu, S.; Wang, H.; Xu, H.; Wang, C.; Zhou, H. On-load automatic voltage regulation system designed via thyristor for distribution transformer. In Proceedings of the International Conference on Electrical Machines and Systems, Sydney, NSW, Australia, 11–14 August 2017; pp. 1–6. [Google Scholar]
- Pfitscher, L.L.; Bernardon, D.P.; Canha, L.N.; Montagner, V.F.; Sperandio, M.; Saldanha, J.A.; Ramos, M.S. A tool for real time analysis of parallelism of distribution networks. In Proceedings of the IEEE/IAS International Conference on Industry Applications, Fortaleza, Brazil, 5–7 July 2012; pp. 1–6. [Google Scholar]
- Tao, H.; Zheng, W.; Ye, X.; Lin, S. Research on high-voltage two-power intelligent switching device and control system. In Proceedings of the International Conference on Consumer Electronics, Communications and Networks, Xianning, China, 11–13 March 2011; pp. 639–641. [Google Scholar]
- Jakka, V.N.; Acharya, S.; Anurag, A.; Prabowo, Y.; Kumar, A.; Parashar, S.; Bhattacharya, S. Protection design considerations of a 10 kV SiC MOSFET enabled mobile utilities support equipment based solid state transformer (muse-SST). In Proceedings of the Annual Conference of the IEEE Industrial Electronics Society, Washington, DC, USA, 21–23 October 2018; pp. 5559–5565. [Google Scholar]
- Prempraneerach, P.; Cooke, C.; Chryssostomidis, C. Transient analysis for H-bridge type DC circuit breaker. In Proceedings of the IEEE Transportation and Electrification Conference and Expo, Chicago, IL, USA, 21 June 2017; pp. 401–406. [Google Scholar]
- Song, L.N.; Li, W.; Ruan, L.G.; Dai, Z.H.; Yang, S.S.; Wang, B.T.; Cheng, G.H.; Jian, Z. A switching-on control strategy of the DC-SSPC for the capacitive loads. In Proceedings of the European Conference on Power Electronics and Applications, Karlsruhe, Germany, 5–9 September 2016; pp. 1–6. [Google Scholar]
- Radmanesh, H.; Fathi, S.H.; Gharehpetian, G.B. Thyristor-Controlled AC Reactor Based Fault Current Limiter for Distribution Network Stability Enhancement. J. Electr. Eng. Technol. 2016, 11, 1070–1076. [Google Scholar] [CrossRef] [Green Version]
- Ruszczyk, A.; Kóska, K.; Janisz, K. Solid-state switch for capacitors bank used in reactive power compensation. In Proceedings of the 12th Conference-Seminar: International School on Nonsinusoidal Currents and Compensation, ISNCC 2015, Lagow, Poland, 23 April 2015; pp. 1–6. [Google Scholar]
- Faisal, M.; Hannan, M.A.; Ker, P.J.; Rahman, M.S.B.A.; Mollik, M.S.; Mansur, M. Bin Review of Solid State Transfer Switch on Requirements, Standards, Topologies, Control, and Switching Mechanisms: Issues and Challenges. Electronics 2020, 9, 1396. [Google Scholar] [CrossRef]
- Marroquí, D.; Garrigós, A.; Blanes, J.M.; Gutiérrez, R.; Maset, E.; Ramírez, D. SIC based solid state protections switches for space applications. In Proceedings of the European Conference on Power Electronics and Applications, Warsaw, Poland, 11–14 September 2017; pp. 1–6. [Google Scholar]
- Liu, J.; Zhang, G.; Chen, Q.; Qi, L.; Qin, Z.; Wang, J. Research on dynamic modeling and transient characteristics of hybrid DC switch. In Proceedings of the International Conference on Electrical Materials and Power Equipment, Xi’an, China, 14–17 May 2017; pp. 625–629. [Google Scholar]
- Tsyruk, S.A.; Gamazin, S.I.; Ryzhkova, Y.N.; Charafeddine, K.F. Determination of Source Fault Using Fast Acting Automatic Transfer Switch. In Proceedings of the International Scientific and Technical Conference, Omsk, Russia, 5–7 November 2019; pp. 1–6. [Google Scholar]
- Lin, X.; Wang, Q.; Li, Y.; Xu, M. Research on DG distribution network protection based on topological analysis and power automatic recovery scheme. In Proceedings of the International Conference on Cogeneration, Small Power Plants and District Energy, Bangkok, Thailand, 14 September 2016; pp. 1–6. [Google Scholar]
- Ulissi, G.; Lee, S.Y.; Dujic, D. Scalable Solid-State Bus-Tie Switch for Flexible Shipboard Power Systems. IEEE Trans. Power Electron. 2021, 36, 239–247. [Google Scholar] [CrossRef]
- Ulissi, G.; Lee, S.Y.; Dujic, D. Solid-State Bus-Tie Switch for Shipboard Power Distribution Networks. IEEE Trans. Transp. Electrif. 2020, 6, 1253–1264. [Google Scholar] [CrossRef]
- He, D.; Shuai, Z.; Wang, W.; Cheng, Y.; Yu, L.; Shen, Z.J. A 2 kV intelligent DC solid state circuit breaker using series connected SiC JFETs. In Proceedings of the IEEE Energy Conversion Congress and Exposition, Baltimore, MD, USA, 29 September–3 October 2019; pp. 1114–1119. [Google Scholar]
- Zhou, Y.; Feng, Y.; Shen, Z.J. Design considerations of tri-mode intelligent solid state circuit breaker using GaN transistors. In Proceedings of the IEEE Applied Power Electronics Conference and Exposition, Anaheim, CA, USA, 17–21 March 2019; pp. 2439–2444. [Google Scholar]
- Zhou, Z.; Jiang, J.; Ye, S.; Liu, C.; Zhang, D. A Γ-Source Circuit Breaker for DC Microgrid Protection. IEEE Trans. Ind. Electron. 2021, 68, 2310–2320. [Google Scholar] [CrossRef]
- Mehrotra, U.; Ballard, B.; Hopkins, D.C. High Current Medium Voltage Bidirectional Solid State Circuit Breaker using SiC JFET Super Cascode. In Proceedings of the IEEE Energy Conversion Congress and Exposition, Detroit, MI, USA, 11–15 October 2020; pp. 6049–6056. [Google Scholar]
- Baradi, D.; Xavier, J. Relay logic programming explained. In Proceedings of the Annual Conference for Protective Relay Engineers, College Station, TX, USA, 26–29 March 2018; Volume 2018, pp. 1–11. [Google Scholar]
- Qian, Y.; Zhang, Y.; Chen, M.; Sun, J.; Du, C.; Wang, Y. Design and application of test system for Solid State Transfer Switch. In Proceedings of the China International Conference on Electricity Distribution, Shenzhen, China, 23–26 September 2014; pp. 12–15. [Google Scholar]
- Rodrigues, M.V.M.; Da Silva, N.; Goncalves, F.A.S. Static Transfer Switch Applied to Single-Phase Uninterruptible Power Supply. In Proceedings of the IEEE Southern Power Electronics Conference, Santos, Brazil, 1–4 December 2019; pp. 1–6. [Google Scholar]
- Cairoli, P.; Rodrigues, R.; Raheja, U.; Walton, S.; Elliott, N. Experimental validation of an Ultra-Fast Medium Voltage UPS Utility Disconnect Switch. In Proceedings of the IEEE Energy Conversion Congress and Exposition, Baltimore, MD, USA, 29 September–3 October 2019; pp. 529–536. [Google Scholar]
- Jiang, X.; Yun, B. Research on Distributed Protection in Switch Stations Based on GOOSE. IOP Conf. Ser. Mater. Sci. Eng. 2019, 533, 012002. [Google Scholar] [CrossRef]
- Hasanah, R.N.; Soeprapto, S.; Adi, H.P. Arduino-Based Automatic Transfer Switch for Domestic Emergency Power Generator-Set. In Proceedings of the IEEE Advanced Information Management, Communicates, Electronic and Automation Control Conference, Xi’an, China, 25–27 May 2018; pp. 742–746. [Google Scholar]
- Makode, N.T.; Joshi, K. Design and monitoring of automatic circuit breaker. In Proceedings of the International Conference on Intelligent Computing and Control Systems, Madurai, India, 25–27 May 2019; pp. 193–196. [Google Scholar]
- Choubey, V.K.; Simlai, J.; Ghosh, T.; Mitra, A. Protection of power electronic switches in a VSI against over-current and shoot-through faults. In Proceedings of the IEEE International Conference on Power Electronics, Intelligent Control and Energy Systems, Delhi, India, 22–24 October 2018; pp. 370–373. [Google Scholar]
- Gomes, M.; Coelho, P.; Moreira, C. Microgrid Protection Schemes. In Microgrids Design and Implementation; Springer: Cham, Switzerland, 2019; pp. 311–336. [Google Scholar]
- Jose, A.; Varghese, A.M.; Jenson, F.E.; Jacob, P.; Anumod, D.M.; Thomas, D. Solid-state circuit breaker based smart distribution board with IoT integration. In Proceedings of the International Conference on Smart Systems and Inventive Technology, Tirunelveli, India, 20–22 August 2020; pp. 54–61. [Google Scholar]
- Wang, D.; Zhang, M.; Ma, S.; Yu, K.; Pan, Y. Design and testing of the 40 kV/20A solid-state switch based on SiC MOSFETs for ECRH on J-TEXT Tokamak. Fusion Eng. Des. 2020, 153, 111483. [Google Scholar] [CrossRef]
- Wang, L.; Feng, B.; Wang, Y.; Zuo, B. Bidirectional short circuit breaker for DC microgrid based on segmented current limiting solid state circuit breaker. In Proceedings of the IEEE Workshop on the Electronic Grid, Xiamen, China, 11–14 November 2019; pp. 1–8. [Google Scholar]
- Wang, W.; Shuai, Z.; Cheng, Y.; He, D.; Yang, X.; Lei, J.; Shen, Z.J. A 400V/300A ultra-fast intelligent DC solid state circuit breaker using parallel connected SiC JFETs. In Proceedings of the IEEE Energy Conversion Congress and Exposition, Baltimore, MD, USA, 29 September–3 October2019; pp. 1899–1904. [Google Scholar]
- Komatsu, M. A solid-state current limiting switch for the application of DC power network. In Proceedings of the International Telecommunications Energy Conference, Turino, Italy, 7–11 October 2019; pp. 1–7. [Google Scholar]
- Gaviria-Marin, M.; Merigo, J.M.; Popa, S. Twenty years of the Journal of Knowledge Management: A bibliometric analysis. J. Knowl. Manag. 2018, 22, 1655–1687. [Google Scholar] [CrossRef] [Green Version]
- Csomós, G.; Tóth, G. Exploring the position of cities in global corporate research and development: A bibliometric analysis by two different geographical approaches. J. Informetr. 2016, 10, 516–532. [Google Scholar] [CrossRef]
- Li, Y.; Huang, S.; Li, H.; Huang, Y.; Xiao, X.; Luo, Y. Design and test of a novel power electronic device for phase sequence exchange technology. Int. J. Electr. Power Energy Syst. 2021, 125, 106550. [Google Scholar] [CrossRef]
- Aaqib, S.M.; Ur Rehman, M.J.; Bilal, H.M.; Usman, M.; Shabbir, M.Z.; Gelani, H.E. Protection Schemes for Low Voltage DC Networks. In Proceedings of the International Conference on Electrical, Communication and Computer Engineering, Swat, Pakistan, 24–25 July 2019; pp. 1–8. [Google Scholar]
- Kennedy, J.; Ciufo, P.; Agalgaonkar, A. Intelligent load management in microgrids. In Proceedings of the IEEE Power and Energy Society General Meeting, San Diego, CA, USA, 22–26 July 2012; pp. 1–6. [Google Scholar]
Ref. | Rank | Author’s Name | Article DOI | Keywords | Year * | Publisher | Type * | Country | NC * | CPY * | FYC * | IF * |
---|---|---|---|---|---|---|---|---|---|---|---|---|
[36] | 1 | Li et al. | 10.1109/TPWRD.2012.2226249 | DC fault, MMC, fault clearance, system recovery | 2012 | IEEE | Article | China | 310 | 25 | 199 | 3.482 |
[37] | 2 | Park & Candelaria | 10.1109/TPWRD.2013.2243478 | IGBT, OC, inverter, optocoupler | 2018 | IEEE | Article | USA | 192 | 16 | 140 | 5.589 |
[38] | 3 | Wang et al. | 10.1109/TIE.2013.2297304 | SiC, MOSFETs, SSCB, OCP | 2014 | IEEE | Article | USA | 145 | 12 | 119 | 2.341 |
[59] | 4 | Shen et al. | 10.1109/TED.2014.2384204 | GaN HEMT, SiC JFET, SSCB, WBG semiconductors | 2015 | IEEE | Article | USA | 75 | 6 | 58 | 3.13 |
[42] | 5 | Emhemed et al. | 10.1109/TPWRD.2016.2593941 | LVDC, SSCBs, DS, multiple IEDs, protection | 2017 | IEEE | Article | UK | 73 | 6 | 73 | 4.561 |
[60] | 6 | Magnusson et al. | 10.1109/TPEL.2013.2272857 | DC breaker, MOV, OVP, SSCB, snubber circuit | 2014 | IEEE | Article | Sweden | 61 | 5 | 42 | 9.91 |
[50] | 7 | Shen et al. | 10.1109/ICDCM.2015.7152044 | SSCBs, DC MG, current status | 2015 | IEEE | Conf. | USA | 59 | 4 | 56 | - |
[43] | 8 | Qi et al. | 10.1109/JESTPE.2016.2633223 | DC, SSCBs, distribution, fault protection | 2017 | IEEE | Article | USA | 55 | 4 | 55 | 4.321 |
[61] | 9 | Agostini et al. | 10.1109/ESTS.2015.7157906 | SSCB, IGCT, RB-IGCT, power switch | 2015 | IEEE | Conf. | Swiss | 48 | 4 | 44 | - |
[51] | 10 | Cuzner & Singh | 10.1109/JESTPE.2016.2638921 | DC distribution, SPS, DC fault protection | 2017 | IEEE | Conf. | USA | 39 | 3 | 39 | - |
[62] | 11 | Li et al. | 10.1109/TPEL.2018.2850441 | LVDC, SSCB, DC fault, distribution, fault current | 2018 | IEEE | Article | China | 38 | 3 | 38 | 2.510 |
[52] | 12 | Miao et al. | 10.1109/JESTPE.2016.2558448 | SiC JFET, SSCB, DC power, WBG semiconductors | 2016 | IEEE | Article | USA | 38 | 3 | 38 | 3.219 |
[63] | 13 | Yazdanpanahi et al. | 10.1109/TPWRD.2013.2276948 | DG, OP, compatibility, fault | 2014 | IEEE | Article | Canada | 37 | 3 | 26 | 3.481 |
[64] | 14 | Costa et al. | 10.1109/TPEL.2016.2585668 | Dc–DC power converters, RC, SRC, fault diagnosis | 2016 | IEEE | article | Germany | 37 | 3 | 37 | 7.151 |
[65] | 15 | Liu et al. | 10.1109/TPEL.2016.2574751 | DC SSCB, OP, snubber, short circuit currents | 2016 | IEEE | Article | China | 31 | 2 | 31 | 7.151 |
[66] | 16 | Ji et al. | 10.1109/TPEL.2018.2834463 | SiC MOSFET, short circuit, protection | 2018 | IEEE | Article | USA | 28 | 2 | 28 | 7.224 |
[67] | 17 | Cuzner & Esamili | 10.1109/ESARS.2015.7101536 | MVDC systems, SPS, DC fault protection | 2015 | IEEE | Conf. | USA | 28 | 2 | 22 | - |
[68] | 18 | Wang et al. | 10.3390/electronics9020306 | DCCB, SSC, DC MG, bidirectional protection | 2020 | MDPI | Article | China | 27 | 2 | 27 | 0.303 |
[69] | 19 | Rodrigues et al. | 10.1109/ESTS.2017.8069314 | SSCB, fault protection, trip-curve, power semiconductor | 2017 | IEEE | Conf. | USA | 27 | 2 | 27 | - |
[44] | 20 | Mobarrez et al. | 10.1109/TIA.2016.2565458 | DC circuit breaker, dc fault, HVDC, protection | 2016 | IEEE | Article | USA | 25 | 2 | 24 | 3.72 |
[70] | 21 | Song et al. | 10.1109/TPWRD.2018.2815550 | VSC-HVDC, MVC, DC circuit breaker, DC fault clearance | 2018 | IEEE | Article | China | 24 | 2 | 24 | 4.42 |
[71] | 22 | Kennedy et al. | 10.1109/PESGM.2012.6345729 | DG, ILS, STS, microgrids | 2012 | IEEE | Con. | Australia | 23 | 1 | 14 | - |
[72] | 23 | Hernandez et al. | 10.3906/elk-1406-14 | DC power systems, STS, VSC, fault current | 2016 | TJMC | Article | Spain | 22 | 1 | 21 | 0.682 |
[73] | 24 | Peng & Huang | 10.1109/APEC.2014.6803800 | DC breaker, VSC, SSCB | 2014 | IEEE | Conf. | USA | 22 | 1 | 11 | - |
[74] | 25 | Song et al. | 10.1109/TIE.2017.2786198 | ESS, STS, SC, DC microgrid, DC distribution | 2017 | IEEE | article | China | 22 | 1 | 22 | 9.28 |
[75] | 26 | Vodyakho et al. | 10.1049/iet-epa.2010.0258 | AFU, DESD, FID, IGBT | 2011 | IET | Article | USA | 20 | 1 | 9 | 2.778 |
[76] | 27 | Castellan et al. | 10.1016/j.ijepes.2017.09.040 | MVDC, SST, DC circuit breaker, DC distribution | 2018 | Elsevier | Review | Italy | 19 | 1 | 19 | 4.4 |
[77] | 28 | Ahn et al. | 10.1109/TPEL.2014.2352651 | SSPPM, protection circuit, pulsed power applications | 2015 | IEEE | Article | Korea | 19 | 1 | 17 | 9.433 |
[44] | 29 | Mobarez et al. | 10.1109/ECCE.2015.7310254 | HVDC, DC circuit breaker, DC fault, protection | 2015 | IEEE | Conf. | USA | 17 | 1 | 10 | - |
[78] | 30 | Song et al. | 10.1109/TPWRD.2018.2865226 | Fault, hybrid HVDC breaker | 2018 | IEEE | Article | China | 16 | 1 | 14 | 4.42 |
[45] | 31 | Ilyushin & Suslov | 10.1109/PTC.2019.8810450 | DG, ATS, transfer switch, relay protection | 2019 | IEEE | Conf. | Russia | 15 | 1 | 15 | - |
[79] | 32 | Suvorov et al. | 10.1007/s00202-016-0464-4 | Synchronous motor, adequacy, operation | 2016 | Springer | Article | Russia | 15 | 1 | 10 | 0.264 |
[80] | 33 | Munasib & Balda | 10.1109/PEDG.2016.7527062 | Dc microgrids, SCCBs, short-circuit protection | 2016 | Springer | Article | Russia | 15 | 1 | 4 | 3.30 |
[81] | 34 | Cairoli et al. | 10.1109/ESTS.2019.8847815 | SSBC, DCSPS, RB-IGCT, fault protection | 2019 | IEEE | Conf. | USA | 13 | 1 | 13 | - |
[82] | 35 | Mokhberdoran et al. | 10.1016/j.epsr.2017.05.032 | DC circuit breaker, fault protection, HVDC transmission | 2017 | Elsevier | Article | Portugal | 13 | 1 | 13 | 2.7 |
[83] | 36 | Song et al. | 10.1109/TPEL.2016.2616841 | GTO, SOA, ETO, SiC, high voltage | 2016 | IEEE | Article | USA | 13 | 1 | 13 | 7.151 |
[46] | 37 | Panetta | 10.1109/ESW.2013.6509026 | SCR fast acting switch, switching transients | 2013 | IEEE | Conf. | Canada | 13 | 1 | 9 | - |
[84] | 38 | He et al. | 10.2514/6.2018-5008 | HVDC, WBG, MEA | 2018 | IEEE | Conf. | USA | 12 | 1 | 12 | - |
[85] | 39 | Gu et al. | 10.3390/en10040495 | SCCBs, HDC, semiconductor devices, protection | 2017 | MDPI AG | Article | UK | 12 | 1 | 12 | 2.676 |
[47] | 40 | Pouresmaeil et al. | 10.1002/etep.461 | Voltage disturbance, algorithm, sag, swell | 2011 | EREP | Article | Spain | 11 | 0 | 2 | 0.577 |
[86] | 41 | Li et al. | 10.1109/PEAC.2014.7038038 | SSDCB, Super UPS, DC protection | 2014 | IEEE | Conf. | China | 10 | 0 | 7 | - |
[87] | 42 | Bhat et al. | 10.1109/APEC.2012.6166172 | SiC MOSFET, SSCB, reliability | 2012 | IEEE | Conf. | USA | 10 | 0 | 3 | - |
[88] | 43 | Zhou et al. | 10.1109/PEDG.2018.8447563 | Digital-Controlled, SiC, SSCB, Soft-Start, DC Microgrids | 2018 | IEEE | Conf. | USA | 9 | 0 | 9 | - |
[41] | 44 | Komatsu | 10.1109/INTLEC.2016.7749138 | DC MG, DC circuit breaker, OCP, MOSFET, IGBT, SiC | 2016 | IEEE | Conf. | Japan | 9 | 0 | 9 | - |
[89] | 45 | Liu et al. | 10.1109/IFEEC.2015.7361508 | MEA, HVDC, SCCB | 2015 | IEEE | Conf. | China | 8 | 0 | 7 | - |
[54] | 46 | Nasereddine et al. | 10.1109/IEEEGCC.2013.6705820 | SSCB, FCL, IGBTs, prototype | 2013 | IEEE | Conf. | Saudi Arabia | 8 | 0 | 5 | - |
[90] | 47 | Qi. et al. | 10.1109/TIA.2019.2962762 | DC SPS, RB-IGCT, SSCB, fault protection | 2019 | IEEE | Article | USA | 7 | 0 | 7 | 4.27 |
[91] | 48 | Wei et al. | 10.1109/APEC.2018.8341000 | STS, IGBT, HDCCB, MTDC, FEM simulation, | 2018 | IEEE | Conf. | China | 7 | 0 | 7 | - |
[92] | 49 | He et al. | 10.1049/iet-pel.2017.0283 | SSCBs, SiC JFET, DC protection | 2018 | IEEE | Article | China | 7 | 0 | 7 | 3.53 |
[57] | 50 | Palaniappan et al. | 10.1109/ECCE.2017.8096662 | SSCBs, DC fault protection | 2017 | IEEE | Conf. | USA | 7 | 0 | 7 | - |
[93] | 51 | Roshandeh et al. | 10.1109/ECCE.2016.7854907 | SiC JFET, SSCB, WBG semiconductors | 2016 | IEEE | Conf. | USA | 7 | 0 | 7 | - |
[94] | 52 | Demetriades et al. | 10.1109/IPEC.2014.6869742 | BESS, Solid-State DC-Breaker, VSC, protection | 2014 | IEEE | Conf. | Sweden | 7 | 0 | 5 | - |
[95] | 53 | Marroquí et al. | 10.1109/TPEL.2019.2893104 | SSCB, FCL, WBG Semiconductors, SiC cascade | 2019 | IEEE | Article | Spain | 6 | 0 | 6 | 6.373 |
[96] | 54 | Liao et al. | 10.1109/TCPMT.2019.2899340 | MOSFET, SSCB, SiC, MOV, snubber circuit | 2019 | IEEE | Article | China | 5 | 0 | 5 | 2.31 |
[97] | 55 | Wang et al. | 10.1109/TASC.2018.2841918 | HDCCB, IGBTs, protection circuit | 2018 | IEEE | Article | China | 5 | 0 | 5 | 1.755 |
[48] | 56 | Pfitscher | 10.1016/j.epsr.2013.07.003 | Smart grid supervisory system, transient analysis | 2013 | Elsevier | Article | The Netherlands | 5 | 0 | 2 | 3.413 |
[98] | 57 | Cramon et al. | 10.1109/CPRE.2013.6822023 | ABTS, GOOSE application, protection | 2013 | IEEE | Conf. | USA | 5 | 0 | 4 | - |
[99] | 58 | Kim et al. | 10.1109/TIE.2019.2916371 | DC MG, SPS, protection coordination | 2019 | IEEE | Conf. | Swiss | 5 | 0 | 5 | 9.451 |
[53] | 59 | Vodyakho et al. | 10.1109/APEC.2011.5744584 | FID, distribution systems, power electronics, prototype | 2011 | IEEE | Conf. | USA | 5 | 0 | 4 | - |
[100] | 60 | Wang et al. | 10.1109/IECON.2019.8926684 | MVDC, SST, SSCB, fault, overcurrent protection | 2019 | IEEE | Conf. | China | 4 | 0 | 4 | - |
[101] | 61 | Yaqobi et al. | 10.3390/app9040723 | DC-Microgrid, SCCB, PV system, short-circuit protection | 2019 | MDPI | Article | Japan | 4 | 0 | 4 | 2.474 |
[102] | 62 | Sa’ed et al. | 10.1109/EEEIC.2017.7977785 | FCL, SSCL, duty cycle | 2017 | IEEE | Conf. | Palestine | 4 | 0 | 4 | - |
[103] | 63 | Mani & Naidu. | 10.1109/PEAC.2014.7038038 | DVR, DSTATCOM, UPQC, PI controller | 2015 | ARPN | Article | India | 4 | 0 | 4 | 0.201 |
[104] | 64 | Valente & Demosthenous, | 10.1109/ICECS.2013.6815401 | Transmitter, amplifier, CMOS | 2013 | IEEE | Conf. | UK | 4 | 0 | 2 | - |
[105] | 65 | Zhang et al. | 10.1109/JESTPE.2019.2951602 | SiC MOSFET, IPM integration, OCP, medium voltage | 2019 | IEEE | Article | USA | 4 | 0 | 4 | 6.373 |
[106] | 66 | Yang & Gu | 10.3390/en5041150 | Automation system, protection, line switch | 2012 | MDPI AG | Article | Taiwan | 4 | 0 | 3 | 0.852 |
[107] | 67 | Bal et al. | 10.1109/IECON.2018.8591242 | SSPC, SSCB, SiC, EMs, TVS, protection circuit | 2018 | IEEE | Conf. | Singapore | 4 | 0 | 4 | - |
[108] | 68 | Zhou at al. | 10.1109/PEAC.2018.8590629 | SiC, SSCB, iBreaker, softstart, DC MGs | 2018 | IEEE | Conf. | USA | 3 | 0 | 3 | - |
[109] | 69 | Feng et al. | 10.1109/APEC.2018.8341287 | SSCB, tripping profile, inrush current, SiC JFET | 2018 | IEEE | Conf. | USA | 3 | 0 | 3 | - |
[58] | 70 | Komatsu | 10.1109/INTLEC.2017.8211688 | Power MOSFET, IGBT, SiC MOSFET, DC circuit breaker | 2017 | IEEE | Conf. | Japan | 3 | 0 | 3 | - |
[110] | 71 | Rubino et al. | 10.15866/iree.v12i5.13982 | SSCB, HCB, Photovoltaic protection | 2017 | IREE | Article | Italy | 3 | 0 | 3 | 1.302 |
[111] | 72 | Qi et al. | 10.1049/cp.2016.0030 | DC, SCCB, shipboard, distribution | 2016 | IEEE | Conf. | USA | 3 | 0 | 3 | - |
[112] | 73 | Zhang et al. | 10.1109/ICIT.2015.7125263 | Thyristor, low voltage, arc faults, bypass switch | 2015 | IEEE | Conf. | Sweden | 3 | 0 | 2 | - |
[113] | 74 | Qi et al. | 10.1109/IAS.2019.8912385 | DCSPS, RB-IGCT, SSCB, fault protection | 2019 | IEEE | Conf. | USA | 2 | 0 | 2 | - |
[114] | 75 | Berg et al. | 10.23919/EPE.2019.8915142 | Protection device, faults, power semiconductor device | 2019 | IEEE | Conf. | Norway | 2 | 0 | 2 | - |
[115] | 76 | Tapia et al. | 10.3390/electronics8090953 | CB, FCL, DC power grids, DC circuit breaker | 2019 | MDPI | Article | Spain | 2 | 0 | 2 | 0.303 |
[116] | 77 | Murugan & Prabu | 10.1109/ICETEEEM.2012.6494451 | SSCBs, power semiconductors, GTO, IGCT | 2012 | IEEE | Conf. | India | 2 | 0 | 2 | - |
[117] | 78 | Sărăcin et al. | 10.1109/ATEE.2015.7133906 | ATS, electric power supplies, vital consumers | 2015 | IEE | Conf. | Romania | 2 | 0 | 2 | - |
[118] | 79 | Ma et al. | 10.1109/ICEMS.2017.805596 | Thyristor, protection, distribution transformer | 2017 | IEEE | Conf. | China | 2 | 0 | 2 | - |
[119] | 80 | Pfitscher et al. | 10.1109/INDUSCON.2012.6451396 | Automatic reconfiguration, smart grids | 2012 | IEEE | Conf. | Brazil | 2 | 0 | 1 | - |
[120] | 81 | Tao et al. | 10.1109/CECNET.2011.5768624 | HV double power, intelligent controller | 2011 | IEEE | Conf. | China | 2 | 0 | 1 | - |
[121] | 82 | Jakka et al. | 10.1109/IECON.2018.8592886 | SiC, SSTS faults, medium voltage, short-circuit | 2018 | IEEE | Conf. | USA | 2 | 0 | 2 | - |
[122] | 83 | Prempraneerach et al. | 10.1109/ITEC.2017.7993304 | DC circuit breakers, thyristor, system protection | 2017 | IEEE | Conf. | Thailand | 2 | 0 | 2 | - |
[123] | 84 | Song et al. | 10.1109/EPE.2016.7695558 | DC SSPC, short-circuit protection, loads | 2016 | IEEE | Conf. | China | 2 | 0 | 2 | - |
[124] | 85 | Radmanesh.et al. | 10.5370/JEET.2016.11.5.1070 | FCL, distribution network, protection | 2016 | KIEE | Article | Iran | 2 | 0 | 2 | 0.67 |
[125] | 86 | Ruszczyk et al. | 10.1109/ISNCC.2015.7174699 | Hybrid switch, protection, semiconductor device | 2017 | IEEE | Conf. | Poland | 2 | 0 | 1 | - |
[126] | 87 | Faisal et al. | 10.3390/electronics9091396 | SSTS topologies, power quality, | 2020 | MDPI | Review | Malaysia | 1 | 0 | 2 | 0.303 |
[127] | 88 | Marroquí, et al. | 10.23919/EPE17ECCEEurope.2017.8099083 | SiC, HVDC, Current limiter, protection | 2017 | IEEE | Conf. | Spain | 1 | 0 | 1 | - |
[128] | 89 | Liu et al. | 10.1109/ICEMPE.2017.7982174 | Hybrid DC contactor, SST, IGBT, MOV protection | 2017 | IEEE | Conf. | China | 1 | 0 | 1 | - |
[129] | 90 | Tsyruk et al. | 10.1109/Dynamics.2018.8601484 | Fault detector, fast device, single-channel component | 2018 | IEEE | Conf. | Russian | 1 | 0 | 1 | - |
[55] | 91 | Pei et al. | 10.1016/j.ijepes.2020.106004 | HDCCB, mechanical switch, semiconductor switch | 2020 | Elsevier | Article | UK | 1 | 0 | 1 | 3.588 |
[130] | 92 | Lin et al. | 10.1109/COGEN.2016.7728957 | DG, microgrid, network topology, planning island | 2016 | IEEE | Conf. | China | 1 | 0 | 1 | - |
[131] | 93 | Ulissi.et al. | 10.1109/TPEL.2020.3000855 | Fault protection, marine equipment, microgrids | 2020 | IEEE | Article | Switzerland | 1 | 0 | 1 | 7.515 |
[56] | 94 | Xu et al., | 10.1109/TPEL.2020.2987418 | Circuit breakers, CS-MCT, microgrids, protection | 2020 | IEEE | Article | China | 1 | 0 | 1 | 7.515 |
[132] | 95 | Ulissi et al. | 10.1109/TTE.2020.2996776 | Marine systems, power electronics, protection | 2020 | IEEE | Article | Switzerland | 1 | 0 | 1 | 5.79 |
[133] | 96 | He et al. | 10.1109/ECCE.2019.8913277 | Distribution system, SSCB, SiC JFET, inrush current | 2019 | IEEE | Conf. | China | 1 | 0 | 1 | - |
[134] | 97 | Zhou et al. | 10.1109/APEC.2019.8721869 | GaN, SSCB, heat dissipation, bidirectional | 2019 | IEEE | Conf. | USA | 1 | 0 | 1 | - |
[135] | 98 | Zhou et al. | 10.1109/TIE.2020.2972431 | CB, power system protection, thyristor | 2020 | IEEE | Article | China | 1 | 0 | 1 | 11.55 |
[2] | 99 | Rodrigues et al. | 10.1109/TPEL.2020.3003358 | SSCBs, fault, power semiconductor devices breaker | 2021 | IEEE | Article | USA | 0 | 0 | 0 | 9.91 |
[136] | 100 | Mehrotra et al. | 10.1109/ECCE44975.2020.9236347 | CB, SSTS, dc distribution, short circuit protection | 2020 | IEEE | Conf. | USA | 0 | 0 | 0 | - |
[137] | 101 | Baradi & Xavier | 10.1109/CPRE.2018.8349819 | ATS, Boolean logic, task cycle | 2018 | IEEE | Conf. | USA | 0 | 0 | 0 | - |
[138] | 102 | Qian et al. | 10.1109/CICED.2014.6991653 | SSTS, custom power, sensitive load, voltage sag | 2014 | IEEE | Conf. | China | 0 | 0 | 0 | - |
[139] | 103 | Maia Rodrigues et al. | 10.1109/COBEP/SPEC44138.2019.9065346 | SSTS, IGBT, UPS, passive standby | 2019 | IEEE | Conf. | Brazil | 0 | 0 | 0 | - |
[140] | 104 | Cairoli et al. | 10.1109/ECCE.2019.8912246 | UPS, energy storage, medium voltage, power quality | 2019 | IEEE | Conf. | USA | 0 | 0 | 0 | - |
[141] | 105 | Jiang & Yun | 10.1088/1757-899X/533/1/012002 | OCP, STU, switching stations, GOOSE network | 2019 | IPP | Conf. | China | 0 | 0 | 0 | - |
[142] | 106 | Hasanah et al. | 10.1109/IMCEC.2018.8469629 | ATS, LCD, contactor relay | 2018 | IEEE | Conf. | Indonesia | 0 | 0 | 0 | - |
[143] | 107 | Makode & Joshi | 10.1109/ICCS45141.2019.9065408 | CB, relays, microcontroller, phase failure | 2019 | IEEE | Conf. | India | 0 | 0 | 0 | - |
[144] | 108 | Choubey et al. | 10.1109/ICPEICES.2018.8897281 | IGBT, optocoupler, over-current, | 2018 | IEEE | Conf. | India | 0 | 0 | 0 | - |
[145] | 109 | Gomes et al. | 10.1007/978-3-319-98687-6_12 | LV distribution, DER, microgrid, switches | 2014 | Springer | Book | Portugal | 0 | 0 | 0 | - |
[136] | 110 | Mehrotra | 10.1109/ECCE44975.2020.9236347 | CB, SST, DC distribution network, short circuit protection | 2020 | IEEE | Conf. | USA | 0 | 0 | 0 | - |
[146] | 111 | Jose | 10.1109/ICSSIT48917.2020.9214172 | SCCB, short-circuit, IoT real-time monitoring | 2020 | IEEE | Conf. | India | 0 | 0 | 0 | - |
[147] | 112 | Wang D. | 10.1016/j.fusengdes.2020.111483 | SiC MOSFET, solid-state switch ECRH, snubber circuit | 2020 | Elsevier | Article | China | 0 | 0 | 0 | 1.692 |
[148] | 113 | Wang et al. | 10.1109/eGRID48402.2019.9092714 | DC microgrid, SCCB, bidirectional breaker | 2019 | IEEE | Conf. | China | 0 | 0 | 0 | - |
[149] | 114 | Wang et al. | 10.1109/ECCE.2019.8912780 | SCCB, SiC JFET, DC distribution system | 2019 | IEEE | Conf. | China | 0 | 0 | 0 | - |
[150] | 115 | Komatsu | 10.1109/INTLEC.2018.8612397 | CL, power MOSFET, IGBT, SiC MOSFET, OP | 2019 | IEEE | Conf. | Japan | 0 | 0 | 0 | - |
[151] | 116 | Li et al. | 10.1016/j.ijepes.2020.106550 | PSE, SCCB, Power electronic device | 2021 | Elsevier | Article | China | 0 | 0 | 0 | 3.588 |
[152] | 117 | Aaqib et al. | 10.1109/ICECCE47252.2019.8940747 | SSTS, DC Systems, LVDC protection, bus bar | 2019 | IEEE | Conf. | Pakistan | 0 | 0 | 0 | - |
Rank | Author’s Name | Ref. | Keywords | Year | Citation | Target | Structure/Configuration | Validation | Advantages | Limitations/Research Gaps |
---|---|---|---|---|---|---|---|---|---|---|
1 | Li et al. | [36] | DC fault, MMC, fault clearance, system recovery | 2012 | 199 |
|
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|
2 | Park & Candelaria | [37] | IGBT, OC, inverter, optocoupler | 2018 | 140 |
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|
3 | Wang et al. | [38] | SiC, MOSFETs, SSCB, OCP | 2014 | 119 |
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|
4 | Emhemed et al. | [42] | LVDC, SSCBs, DS, multiple IEDs, protection | 2017 | 73 |
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|
5 | Shen et al. | [59] | GaN HEMT, SiC JFET, SSCB, WBG semiconductors | 2015 | 58 |
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|
6 | Shen et al. | [50] | SSCBs, DC MG, current status | 2015 | 56 |
|
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|
|
|
7 | Qi et al. | [90] | DC, SSCBs, distribution, fault protection | 2017 | 55 |
|
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|
|
|
8 | Agostini et al. | [61] | SSCB, IGCT, RB-IGCT, power switch | 2015 | 44 |
|
|
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|
9 | Magnusson et al. | [60] | DC breaker, MOV, OVP, SSCB, snubber circuit | 2014 | 42 |
|
|
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|
10 | Cuzner & Singh | [51] | DC distribution, SPS, DC fault protection | 2017 | 39 |
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|
|
Ref. | Topology | Source | Configuration | Converter | Control | Method | Load | Power Loss | Fault Detection time | Applications |
---|---|---|---|---|---|---|---|---|---|---|
[36] | Three-phase | 150 kV | Thyristor-based transfer switches | Modular multi-level converter (MMC) | Voltage detection scheme and gating mechanism | IGCT | Resistive and inductive | Medium | High | HVDC |
[37] | Three-phase | 1.5 kV | Solid-state bidirectional switches | Typical power-electronics converters | One master controller, two slave controllers | IGBT | Snubber circuit | Medium | 10 μs | Low-voltage DC-bus-based microgrid system |
[38] | Three-phase | 1200 V | Solid-state distribution switches | SiC MOSFET based step-down converter | Central logic control and gating mechanism | IGBT | Inductive | Low | 200 ns | Industrial |
[42] | Three-phase | 320 kV | Solid-state distribution switches | 2 level AC-DC converter | Intelligent electronic devices (IEDs) | IGBT | Inductive | Medium | Less than 1 ms. | Low voltage direct current (LVDC) distribution systems |
[59] | Single-phase | 1200 V | Solid-state distribution switches | Isolated DC/DC converter | Voltage source converter (VSC) | SiC JFET | Resistive | Low | 1 μs | DC power distribution line |
[50] | Single-phase | 1200 V | Semiconductor static switches | Isolated DC/DC converter | PWM control | SiC JFET | Resistive | Low | 0.8 µs | Transmission line |
[90] | Single-phase | 1 kV | Thyristor-based transfer switches | Bidirectional isolated DC/DC converter | Intelligent microcontroller system | IGCT | Inductive | Medium | 180 μs | DC grid, marine, battery protection |
[61] | Single-phase | 2.5 kV | Solid-state bidirectional switches | Bidirectional DC/DC converter | Voltage detection scheme and gating mechanism | Bi-directional Reverse Blocking-IGCT (RB-IGCT) | Resistive | Medium | Medium | Distribution line |
[60] | Single-phase | 12 V | Solid-state distribution switches | Typical power-electronics converters | Metal oxide varistors (MOVs) | IGBT | Resistive and inductive | Low | 0.7 μs | Transmission line |
[51] | Single-phase | 10 kV | Thyristor-based transfer switches | Non-isolated AC to DC converter | Metal oxide varistors (MOVs) | Silicon super gate turn-off thyristors (SGTOs) | Resistive | Low | High | Navy shipboard applications |
Types of Study | Frequency | Range of Years | Range of Citation |
---|---|---|---|
Experimental work, development, and performance assessment | 53 | 2012–2021 | 0–310 |
Problem formulation and simulation analysis | 41 | 2012–2020 | 0–13 |
State of the art technical overview | 16 | 2011–2019 | 0–75 |
Reviews | 10 | 2014–2021 | 0–73 |
Subject Area | Frequency | Citation Range | Frequency Weight (%) |
---|---|---|---|
Fault detection scheme | 94 | 0–310 | 78 |
SCCBs implementation | 55 | 0–245 | 45.83 |
Prototype testing | 29 | 0–192 | 24.17 |
Microgrid application | 19 | 0–192 | 15.83 |
Power system overview | 19 | 0–75 | 15.83 |
SCCB development system | 14 | 0–310 | 11.67 |
SiC development for switching | 11 | 0–28 | 9.17 |
Hybrid switches implementation | 10 | 0–61 | 8.33 |
Power-sharing | 7 | 0–192 | 5.83 |
HVDC system | 6 | 1–17 | 5.00 |
DC shipboard power system | 6 | 1–13 | 5.00 |
Semiconductor device review | 6 | 0–12 | 5.00 |
MVDC system | 5 | 0–28 | 4.17 |
VSC approach | 5 | 17–25 | 4.17 |
SCCB based design and optimization | 4 | 1–2 | 3.33 |
Synchronous motors and power system | 2 | 13–15 | 1.67 |
PY | TP | AU | AU/TP | SA | CA |
---|---|---|---|---|---|
2010 | 0 | 0 | 0 | 0 | 0 |
2011 | 3 | 13 | 4.33 | 0 | 3 |
2012 | 6 | 26 | 4.33 | 0 | 6 |
2013 | 5 | 16 | 3.20 | 1 | 4 |
2014 | 8 | 33 | 4.13 | 0 | 8 |
2015 | 11 | 44 | 4.00 | 0 | 11 |
2016 | 15 | 65 | 4.33 | 1 | 14 |
2017 | 17 | 103 | 6.06 | 1 | 16 |
2018 | 20 | 90 | 4.50 | 0 | 20 |
2019 | 22 | 88 | 4.00 | 1 | 21 |
2020 | 11 | 49 | 4.45 | 0 | 11 |
2021 | 2 | 10 | 5.00 | 0 | 2 |
Total | 120 | 537 | 48.33 | 4 | 116 |
Average | 4.39 |
No | Author | TP | TC | CPP | h-Index | University/Institute | Country |
---|---|---|---|---|---|---|---|
1 | Shen | 11 | 212 | 19.27 | 39 | Illinois Institute of Technology | USA |
2 | Antoniazzi | 6 | 125 | 20.83 | 8 | Corporate Research Center, ABB Inc. | USA |
3 | Cairoli | 6 | 51 | 8.50 | 13 | Research Center, ABB Inc., Raleigh, NC | USA |
4 | Miao | 4 | 179 | 44.75 | 8 | Illinois Institute of Technology | USA |
5 | Bhattacharya | 4 | 64 | 16.00 | 49 | North Carolina State University | USA |
6 | Song | 3 | 356 | 118.67 | 49 | Tsinghua University | China |
7 | Liu | 3 | 356 | 118.67 | 18 | Tsinghua University | China |
8 | Wang | 3 | 155 | 51.67 | 43 | University of Tennessee | USA |
9 | Roshandeh | 3 | 104 | 34.67 | 7 | Illinois Institute of Technology | USA |
10 | Shuai | 3 | 82 | 27.33 | 18 | Illinois Institute of Technology | USA |
No. | University/Institutions/Companies | Country | TP | TC | CPP | h-Index |
---|---|---|---|---|---|---|
1 | Illinois Institute of Technology | USA | 8 | 195 | 24.38 | 45.50 |
2 | Research Center ABB Inc. Raleigh, NC | USA | 8 | 107 | 13.38 | - |
3 | North Carolina State University | USA | 7 | 79 | 11.29 | 60.45 |
4 | Tsinghua University | China | 4 | 363 | 90.75 | 57.67 |
5 | University of Wisconsin | USA | 3 | 74 | 24.67 | - |
6 | Xi’an Jiaotong University | China | 3 | 31 | 10.33 | 57.00 |
7 | National Institute of Technology | Japan | 3 | 12 | 4.00 | 48.00 |
8 | Miguel Hernández University of Elche | Spain | 3 | 8 | 2.67 | - |
9 | University of Tennessee | USA | 2 | 173 | 86.5 | 60.36 |
10 | Wuhan University | China | 2 | 39 | 19.50 | 44.50 |
R | Country | TP | TC | CPP |
---|---|---|---|---|
1 | USA | 36 | 882 | 24.50 |
2 | China | 28 | 534 | 19.07 |
3 | Japan | 6 | 20 | 3.33 |
4 | Spain | 6 | 43 | 7.17 |
5 | India | 5 | 6 | 1.20 |
6 | Norway | 5 | 80 | 16.00 |
7 | UK | 4 | 90 | 22.50 |
8 | Switzerland | 4 | 54 | 13.50 |
9 | Russia | 3 | 31 | 10.33 |
10 | Brazil | 3 | 7 | 2.33 |
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Arsad, A.Z.; Sebastian, G.; Hannan, M.A.; Ker, P.J.; Rahman, M.S.A.; Mansor, M.; Lipu, M.S.H. Solid State Switching Control Methods: A Bibliometric Analysis for Future Directions. Electronics 2021, 10, 1944. https://doi.org/10.3390/electronics10161944
Arsad AZ, Sebastian G, Hannan MA, Ker PJ, Rahman MSA, Mansor M, Lipu MSH. Solid State Switching Control Methods: A Bibliometric Analysis for Future Directions. Electronics. 2021; 10(16):1944. https://doi.org/10.3390/electronics10161944
Chicago/Turabian StyleArsad, Akmal. Z., Glorria Sebastian, Mahammad A. Hannan, Pin Jern Ker, M. Safwan A. Rahman, Muhamad Mansor, and M. Shahadat Hossain Lipu. 2021. "Solid State Switching Control Methods: A Bibliometric Analysis for Future Directions" Electronics 10, no. 16: 1944. https://doi.org/10.3390/electronics10161944
APA StyleArsad, A. Z., Sebastian, G., Hannan, M. A., Ker, P. J., Rahman, M. S. A., Mansor, M., & Lipu, M. S. H. (2021). Solid State Switching Control Methods: A Bibliometric Analysis for Future Directions. Electronics, 10(16), 1944. https://doi.org/10.3390/electronics10161944