Analytical Methods of Voltage Stability in Renewable Dominated Power Systems: A Review
Abstract
:1. Introduction
- Investigate the analysis and verification of voltage stability studies based on different renewable energy generation types;
- Classify and compare voltage stability analysis methods based on different microgrid operation modes and types of DGs; and
- Evaluate voltage stability techniques and conduct a simulation verification to demonstrate the most suitable simulation platform with different microgrid settings.
2. Voltage Stability Methods of Analysis
2.1. Static Voltage Analysis Techniques
2.1.1. Continuation Load Flow Method Using P–V and V–Q Curves
2.1.2. Modal Analysis of the Jacobian Matrix Based on V–Q Sensitivity
2.1.3. Singular Value Decomposition Using Network-Load Admittance Ratio
2.1.4. Transfer Capability Evaluation Using Static Analysis Methods
2.2. Dynamic Voltage Analysis Techniques
2.2.1. Small Signal Analysis Method
2.2.2. Large Signal Analysis Method
3. Voltage Stability Analysis Indices
3.1. VSI Classification
3.2. Voltage Stability Indices Review
3.2.1. Jacobian-Matrix-Based VSIs
3.2.2. System-Variable-Based VSIs
4. Verification Case Studies for the Voltage Stability Analysis
4.1. Analysis and Verification Case Studies with Integrated PV Generation Only
4.2. Analysis and Verification Case Studies with Integrated Wind Generation Only
4.3. Analysis and Verification Cases with Hybrid Distributed Generation
- When a sampling method uses the standard error of the mean (SEM), the fitting probability ratio may be negative, while sampling methods using CMEM have greater effectiveness and accuracy;
- The computational speed of the method based on CMEM is significantly higher than that of the Monte Carlo method, resulting in a time saving of 99.95%;
- The higher the penetration rate of renewable energy, the greater the load margin fluctuation, leading to a more unstable system;
- As the correlation degree of external weather factors, such as the wind speed and solar irradiation rate, increases, the mean value of the load margin is almost unchanged, but the fluctuation degree increases.
4.4. Examples of Simulation Validation under Different Scenarios
- Basic load condition;
- Different load models;
- The model works under the critical state.
- A two-node power system model with a 90-degree initial voltage angle for a flat start;
- A 1900 MW pure active load connected at the receiving end of the power system.
- Bus 8–9 outage;
- G3 outage;
- Bus 12 load increment.
5. Conclusions
- Systematic development of dynamic voltage stability analysis methods: Although several dynamic methods to evaluate the voltage profile of a system are available, additional work needs to be performed to improve their accuracy and efficacy levels.
- Online real-time techniques for assessing the state of the system’s voltage and the threshold of instability: It can be anticipated that power systems can be further optimized in an efficient and timely manner if the voltage collapse is detected at an early stage.
- Coping with increasing asynchronous generation from renewables: The increasing complexity of the network due to the higher level of renewable penetration may lead to more stability issues. Increasing the integration of DGs may exponentially increase the risk of large disturbance instability. Therefore, it may become important to coordinate the expanding asynchronous power supplies with the current synchronous generation.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Antoniadou-Plytaria, K.E.; Kouveliotis-Lysikatos, I.N.; Georgilakis, P.S.; Hatziargyriou, N.D. Distributed and Decentralized Voltage Control of Smart Distribution Networks: Models, Methods, and Future Research. IEEE Trans. Smart Grid 2017, 8, 2999–3008. [Google Scholar] [CrossRef]
- Huang, Q.; Huang, R.; Hao, W.; Tan, J.; Fan, R.; Huang, Z. Adaptive Power System Emergency Control Using Deep Reinforcement Learning. IEEE Trans. Smart Grid 2020, 11, 1171–1182. [Google Scholar] [CrossRef] [Green Version]
- Olivares, D.E.; Mehrizi-Sani, A.; Etemadi, A.H.; Cañizares, C.A.; Iravani, R.; Kazerani, M.; Hajimiragha, A.H.; Gomis-Bellmunt, O.; Saeedifard, M.; Palma-Behnke, R.; et al. Trends in Microgrid Control. IEEE Trans. Smart Grid 2014, 5, 1905–1919. [Google Scholar] [CrossRef]
- Aththanayake, L.; Hosseinzadeh, N.; Mahmud, A.; Gargoom, A.; Farahani, E.M. Challenges to Voltage and Frequency Stability of Microgrids under Renewable Integration. In Proceedings of the AUPEC 2020: Australasian Universities Power Engineering Conference, Hobart, Australia, 29 November–2 December 2020. [Google Scholar]
- Adetokun, B.B.; Muriithi, C.M.; Ojo, J.O. Voltage stability assessment and enhancement of power grid with increasing wind energy penetration. Int. J. Electr. Power Energy Syst. 2020, 120, 11. [Google Scholar] [CrossRef]
- Lee, Y.; Song, H. A reactive power compensation strategy for voltage stability challenges in the Korean power system with dynamic loads. Sustainability 2019, 11, 326. [Google Scholar] [CrossRef] [Green Version]
- Tang, X.; Zhang, D.; Chai, H. Synthetical Optimal Design for Passive-Damped LCL Filters in Islanded AC Microgrid. J. Energy Power Technol. 2021, 3, 22. [Google Scholar] [CrossRef]
- Chai, H.; Priestley, M.; Tang, X.; Ravishankar, J. Implementation of Microgrid Virtual Laboratory in a Design Course in Electrical Engineering. In Proceedings of the 2020 IEEE International Conference on Teaching, Assessment, and Learning for Engineering (TALE), Takamatsu, Japan, 8–11 December 2020; pp. 509–515. [Google Scholar]
- Hosseinzadeh, N.; Aziz, A.; Mahmud, A.; Gargoom, A.; Rabbani, M. Voltage Stability of Power Systems with Renewable-Energy Inverter-Based Generators: A Review. Electronics 2021, 10, 115. [Google Scholar] [CrossRef]
- Kundur, P.; Paserba, J.; Ajjarapu, V.; Andersson, G.; Bose, A.; Canizares, C.; Hatziargyriou, N.; Hill, D.; Stankovic, A.; Taylor, C.; et al. Definition and classification of power system stability. IEEE Trans. Power Syst. 2004, 19, 1387–1401. [Google Scholar] [CrossRef]
- Farrokhabadi, M.; Lagos, D.; Wies, R.W.; Paolone, M.; Liserre, M.; Meegahapola, L.; Kabalan, M.; Hajimiragha, A.H.; Peralta, D.; Elizondo, M.A.; et al. Microgrid Stability Definitions, Analysis, and Examples. IEEE Trans. Power Syst. 2020, 35, 13–29. [Google Scholar] [CrossRef]
- Moon, Y.H.; Ryu, H.S.; Lee, J.G.; Kim, B. Uniqueness of static voltage stability analysis in power systems. In Proceedings of the 2001 Power Engineering Society Summer Meeting, Vancouver, BC, Canada, 15–19 July 2001; pp. 1536–1541. [Google Scholar]
- Morison, G.; Gao, B.; Kundur, P. Voltage stability analysis using static and dynamic approaches. IEEE Trans. Power Syst. 1993, 8, 1159–1171. [Google Scholar] [CrossRef]
- Fan, B.; Guo, S.L.; Peng, J.K.; Yang, Q.M.; Liu, W.X.; Liu, L.M. A Consensus-Based Algorithm for Power Sharing and Voltage Regulation in DC Microgrids. IEEE Trans. Ind. Inform. 2020, 16, 3987–3996. [Google Scholar] [CrossRef]
- Crow, M.; Ayyagari, J. The effect of excitation limits on voltage stability. IEEE Trans. Circuits Syst. I Fundam. Theory Appl. 1995, 42, 1022–1026. [Google Scholar] [CrossRef]
- Kabir, S.; Krause, O.; Bansal, R.; Ravishanker, J. Dynamic voltage stability analysis of sub-transmission networks with large-scale photovoltaic systems. In Proceedings of the 2014 IEEE PES General Meeting Conference & Exposition, National Harbor, MD, USA, 27–31 July 2014; pp. 1–5. [Google Scholar]
- Xu, C.; Li, P.; Li, X.; Chen, D.; Zhang, Y.; Lei, B. Small disturbance voltage stability considering thermostatically controlled load. In Proceedings of the 2011 International Conference on Advanced Power System Automation and Protection, Beijing, China, 16–20 October 2011; pp. 862–866. [Google Scholar]
- Younas, M.W.; Qureshi, S.A. Voltage stability improvement of a reactive power constrained longitudinal network feeding predominantly agricultural loads in scattered remote areas. In Proceedings of the 2008 Australasian Universities Power Engineering Conference, Sydney, Australia, 14–17 December 2008; pp. 1–6. [Google Scholar]
- Fu, X.; Wang, X. Determination of load shedding to provide voltage stability. Int. J. Electr. Power Energy Syst. 2011, 33, 515–521. [Google Scholar] [CrossRef]
- Wu, X.; Zhang, Y.; Arulampalam, A.; Jenkins, N. Electrical stability of large scale integration of micro generation into low voltage grids. Int. J. Electron. 2005, 1, 1–23. [Google Scholar]
- Al Rhia, R.; Daghrour, H.; Alsamara, M. Optimal Location of Distributed Generation and its Impacts on Voltage Stability. In Proceedings of the 2021 12th International Renewable Engineering Conference (IREC), Amman, Jordan, 14–15 April 2021; IEEE: New York, NY, USA, 2021; pp. 218–223. [Google Scholar]
- Sudabattula, S.K.; Muniswamy, K. Optimal Allocation of Different Types of Distributed Generators in Distribution System. Gazi Univ. J. Sci. 2019, 32, 186–203. [Google Scholar]
- Truong, K.H.; Nallagownden, P.; Elamvazuthi, I.; Vo, D.N. A Quasi-Oppositional-Chaotic Symbiotic Organisms Search algorithm for optimal allocation of DG in radial distribution networks. Appl. Soft Comput. 2020, 88, 25. [Google Scholar] [CrossRef]
- Niveditha, P.; Sujatha, M.S. Optimal Allocation and Sizing of DG in Radial Distribution System-A Review. Int. J. Grid Distrib. Comput. 2018, 11, 49–57. [Google Scholar] [CrossRef]
- Han, Y.; Ning, X.; Yang, P.; Xu, L. Review of Power Sharing, Voltage Restoration and Stabilization Techniques in Hierarchical Controlled DC Microgrids. IEEE Access 2019, 7, 149202–149223. [Google Scholar] [CrossRef]
- Zhang, J.; Tse, C.; Wang, K.; Chung, C. Voltage stability analysis considering the uncertainties of dynamic load parameters. IET Gener. Transm. Distrib. 2009, 3, 941–948. [Google Scholar] [CrossRef]
- Lammert, G.; Premm, D.; Ospina, L.D.P.; Boemer, J.C.; Braun, M.; Van Cutsem, T. Control of photovoltaic systems for enhanced short-term voltage stability and recovery. IEEE Trans. Energy Convers. 2018, 34, 243–254. [Google Scholar] [CrossRef] [Green Version]
- Furukakoi, M.; Danish, M.S.S.; Howlader, A.M.; Senjyu, T. Voltage Stability Improvement of Transmission Systems Using a Novel Shunt Capacitor Control. Int. J. Emerg. Electr. Power Syst. 2018, 19, 12. [Google Scholar] [CrossRef]
- Liu, J.Y.; Li, J.Q.; Song, H.H.; Nawaz, A.; Qu, Y.B. Nonlinear Secondary Voltage Control of Islanded Microgrid via Distributed Consistency. IEEE Trans. Energy Convers. 2020, 35, 1964–1972. [Google Scholar] [CrossRef]
- Qian, T.; Liu, Y.; Zhang, W.H.; Tang, W.H.; Shahidehpour, M. Event-Triggered Updating Method in Centralized and Distributed Secondary Controls for Islanded Microgrid Restoration. IEEE Trans. Smart Grid 2020, 11, 1387–1395. [Google Scholar] [CrossRef]
- Afrin, N.; Yang, F.W.; Lu, J.W. Optimized reactive power support strategy for photovoltaic inverter to intensify the dynamic voltage stability of islanded microgrid. Int. Trans. Electr. Energy Syst. 2020, 30, 16. [Google Scholar] [CrossRef]
- Hemmatpour, M.H.; Mohammadian, M.; Gharaveisi, A.A. Optimum islanded microgrid reconfiguration based on maximization of system loadability and minimization of power losses. Int. J. Electr. Power Energy Syst. 2016, 78, 343–355. [Google Scholar] [CrossRef]
- Alzahrani, S.; Shah, R.; Mithulananthan, N. Examination of Effective VAr with Respect to Dynamic Voltage Stability in Renewable Rich Power Grids. IEEE Access 2021, 9, 75494–75508. [Google Scholar] [CrossRef]
- Rohikaa, M.R.; Lakshmi, R.; Rajan, S.; Ashok, S. Assessment of Voltage Stability in Microgrid. In Proceedings of the 2016 International Conference on Electrical, Electronics, and Optimization Techniques (ICEEOT), Chennai, India, 3–5 March 2016. [Google Scholar]
- Kundur, P. Power system stability. In Power System Stability and Control; CRC Press: Boca Raton, FL, USA, 2007; pp. 8-1–8-3. [Google Scholar]
- Aththanayake, L.; Hosseinzadeh, N.; Mahmud, A.; Gargoom, A.; Farahani, E.M. Comparison of Different Techniques for Voltage Stability Analysis of Power Systems. In Proceedings of the Australasian Universities Power Engineering Conference, Hobart, Australia, 29 November–2 December 2020. [Google Scholar]
- Machowski, J.; Lubosny, Z.; Bialek, J.W.; Bumby, J.R. Power System Dynamics: Stability and Control; John Wiley & Sons: Hoboken, NJ, USA, 2020. [Google Scholar]
- Alzaareer, K.; Saad, M.; Mehrjerdi, H.; El-Bayeh, C.Z.; Asber, D.; Lefebvre, S. A new sensitivity approach for preventive control selection in real-time voltage stability assessment. Int. J. Electr. Power Energy Syst. 2020, 122, 10. [Google Scholar] [CrossRef]
- Li, G.; Jiang, T.; Xu, Q.; Chen, H.; Jia, H. Sensitivity analysis based on local voltage stability margin and its application. Electr. Power Autom. Equip. 2012, 32, 1–5. [Google Scholar]
- Zeng, J.; Liu, Q.; Zhong, J.; Jin, S.; Pan, W. Influence on static voltage stability of system connected with wind power. In Proceedings of the 2012 Asia-Pacific Power and Energy Engineering Conference, Shanghai, China, 27–29 March 2012; pp. 1–4. [Google Scholar]
- Chi, Y.; Liu, Y.; Wang, W.; Dai, H. Voltage stability analysis of wind farm integration into transmission network. In Proceedings of the 2006 International Conference on Power System Technology, Chongqing, China, 22–26 October 2006; pp. 1–7. [Google Scholar]
- Toma, R.; Gavrilas, M. The impact on voltage stability of the integration of renewable energy sources into the electricity grids. In Proceedings of the 2014 International Conference and Exposition on Electrical and Power Engineering (EPE), Iasi, Romania, 16–18 October 2014; pp. 1051–1054. [Google Scholar]
- Song, Y.; Hill, D.J.; Liu, T. Static Voltage Stability Analysis of Distribution Systems Based on Network-Load Admittance Ratio. IEEE Trans. Power Syst. 2019, 34, 2270–2280. [Google Scholar] [CrossRef]
- Rabiee, A.; Vanouni, M.; Parniani, M. Optimal reactive power dispatch for improving voltage stability margin using a local voltage stability index. Energy Convers. Manag. 2012, 59, 66–73. [Google Scholar] [CrossRef]
- Ma, Y.; Li, X.; Zhou, X.; Li, J. The comments on dynamic bifurcation of voltage stability in power system. In Proceedings of the 2010 WASE International Conference on Information Engineering, Beidaihe, China, 14–15 August 2010; pp. 272–275. [Google Scholar]
- Yang, D.; Wang, X.; Liu, F.; Xin, K.; Liu, Y.; Blaabjerg, F. Adaptive Reactive Power Control of PV Power Plants for Improved Power Transfer Capability Under Ultra-Weak Grid Conditions. IEEE Trans. Smart Grid 2019, 10, 1269–1279. [Google Scholar] [CrossRef] [Green Version]
- Guo, X.; Zhu, D.; Zou, X.; Yang, Y.; Kang, Y.; Tang, W.; Peng, L. Analysis and Enhancement of Active Power Transfer Capability for DFIG-Based WTs in Very Weak Grid. IEEE J. Emerg. Sel. Top. Power Electron. 2021, 1. [Google Scholar] [CrossRef]
- Burchett, S.M.; Douglas, D.; Ghiocel, S.G.; Liehr, M.W.; Chow, J.H.; Kosterev, D.; Faris, A.; Heredia, E.; Matthews, G.H. An optimal Thevenin equivalent estimation method and its application to the voltage stability analysis of a wind hub. IEEE Trans. Power Syst. 2017, 33, 3644–3652. [Google Scholar] [CrossRef]
- Zhang, X.; Rehtanz, C.; Pal, B. Flexible AC Transmission Systems: Modelling and Control; Springer Science & Business Media: Berlin/Heidelberg, Germany, 2012. [Google Scholar]
- Li, P.; Zhang, B.; Wang, C.; Shu, J.; You, M.; Wang, Y.; Bo, Z.; Klimek, A. Time-domain simulation investigates short-term voltage stability with dynamic loads. In Proceedings of the 2009 Asia-Pacific Power and Energy Engineering Conference, Wuhan, China, 27–31 March 2009; pp. 1–5. [Google Scholar]
- Lee, B.H.; Lee, K.Y. Dynamic and static voltage stability enhancement of power systems. IEEE Trans. Power Syst. 1993, 8, 231–238. [Google Scholar] [CrossRef]
- Abe, S.; Fukunaga, Y.; Isono, A.; Kondo, B. Power system voltage stability. IEEE Trans. Power Appar. Syst. 1982, 101, 3830–3840. [Google Scholar] [CrossRef]
- Ren, L.; Zhang, P. Generalized Microgrid Power Flow. IEEE Trans. Smart Grid 2018, 9, 3911–3913. [Google Scholar] [CrossRef]
- Chen, Z.; Li, Q.; Wan, M.M.; Li, W.L.; IEEE. A simplified method for voltage stability analysis of wind power integration. In Proceedings of the 2008 International Conference on Power System Technology, Guangzhou, China, 6–8 November 2018; pp. 1646–1652. [Google Scholar]
- Wang, Y.; Lu, Z.; Min, Y.; Wang, Z. Small signal analysis of microgrid with multiple micro sources based on reduced order model in islanding operation. In Proceedings of the 2011 IEEE Power and Energy Society General Meeting, Detroit, MI, USA, 24–28 July 2011; pp. 1–9. [Google Scholar]
- Shuai, Z.; Peng, Y.; Liu, X.; Li, Z.; Guerrero, J.M.; Shen, Z.J. Parameter Stability Region Analysis of Islanded Microgrid Based on Bifurcation Theory. IEEE Trans. Smart Grid 2019, 10, 6580–6591. [Google Scholar] [CrossRef]
- Guedes, R.; Silva, F.; Alberto, L.; Bretas, N. Large disturbance voltage stability assessment using extended Lyapunov function and considering voltage dependent active loads. In Proceedings of the IEEE Power Engineering Society General Meeting 2005, San Francisco, CA, USA, 16 June 2005; pp. 1760–1767. [Google Scholar]
- Ma, Y.; Lv, S.; Zhou, X.; Gao, Z. Review Analysis of Voltage Stability in Power System. In Proceedings of the 2017 IEEE International Conference on Mechatronics and Automation (ICMA), Takamatsu, Japan, 6–9 August 2017; pp. 7–12. [Google Scholar]
- Wang, L.; Polis, M.; Wang, C.; Lin, F. Voltage Stability and Robustness for Microgrid Systems. In Proceedings of the European Control Conference (ECC), Zurich, Switzerland, 17–19 July 2013; pp. 2038–2043. [Google Scholar]
- Neto, J.A.S.; De Souza, A.C.Z.; De Lorenci, E.V.; Mendes, T.P.; Dos Santos, P.M.D.; Nascimento, B.D. Static Voltage Stability Analysis of an Islanded Microgrid Using Energy Function. IEEE Access 2020, 8, 201005–201014. [Google Scholar] [CrossRef]
- De Lorenci, E.V.; De Souza, A.C.Z.; Lopes, B.I.L. Energy function applied to voltage stability studies—DiscussiOn on low voltage solutions with the help of tangent vector. Electr. Power Syst. Res. 2016, 141, 290–299. [Google Scholar] [CrossRef]
- Rao, A.R.N.; Vijaya, P.; Kowsalya, M. Voltage stability indices for stability assessment: A review. Int. J. Ambient Energy 2021, 42, 829–845. [Google Scholar] [CrossRef]
- Roos, M.H.; Nguyen, P.H.; Morren, J.; Slootweg, J.G. Modeling and Experimental Validation of Power Electronic Loads and DERs For Microgrid Islanding Simulations. IEEE Trans. Power Syst. 2020, 35, 2279–2288. [Google Scholar] [CrossRef]
- Zaheb, H.; Danish, M.S.S.; Senjyu, T.; Ahmadi, M.; Nazari, A.M.; Wali, M.; Khosravy, M.; Mandal, P. A Contemporary Novel Classification of Voltage Stability Indices. Appl. Sci. 2020, 10, 1639. [Google Scholar] [CrossRef] [Green Version]
- Beg, N.; Armstorfer, A.; Rosin, A.; Biechl, H. Mathematical Modeling and Stability Analysis of a Microgrid in Island Operation. In Proceedings of the 2018 International Conference on Smart Energy Systems and Technologies (SEST), Seville, Spain, 10–12 September 2018. [Google Scholar]
- Sagara, M.; Furukakoi, M.; Senjyu, T.; Danish, M.S.S.; Funabashi, T. Voltage stability improvement to power systems with energy storage systems. In Proceedings of the 2016 17th International Conference on Harmonics and Quality of Power (ICHQP), Belo Horizonte, Brazil, 16–19 October 2016; pp. 7–10. [Google Scholar]
- Danish, M.S.S.; Yona, A.; Senjyu, T. Voltage stability assessment index for recognition of proper bus for load shedding. In Proceedings of the 2014 International Conference on Information Science, Electronics and Electrical Engineering, Sapporo, Japan, 26–28 April 2014; 2014; pp. 636–639. [Google Scholar]
- Danish, M.S.S. Voltage Stability in Electric Power System: A Practical Introduction; Logos Verlag Berlin: Berlin, Germany, 2015. [Google Scholar]
- Ekwue, A.; Wan, H.; Cheng, D.; Song, Y. Singular value decomposition method for voltage stability analysis on the National Grid system (NGC). Int. J. Electr. Power Energy Syst. 1999, 21, 425–432. [Google Scholar] [CrossRef]
- Xia, C.J.; Zheng, X.T.; Guan, L.; Baig, S. Probability analysis of steady-state voltage stability considering correlated stochastic variables. Int. J. Electr. Power Energy Syst. 2021, 131, 10. [Google Scholar] [CrossRef]
- Greene, S.; Dobson, I.; Alvarado, F.L. Sensitivity of the loading margin to voltage collapse with respect to arbitrary parameters. IEEE Trans. Power Syst. 1997, 12, 262–272. [Google Scholar] [CrossRef] [Green Version]
- Chen, H.; Shao, J.; Jiang, T.; Zhang, R.; Li, X.; Li, G. Security Control Strategy for Integrated Energy System Using Parameter Sensitivity. Zhongguo Dianji Gongcheng Xuebao/Proc. Chin. Soc. Electr. Eng. 2020, 40, 4831–4842. [Google Scholar] [CrossRef]
- Sadeghi, S.E.; Foroud, A.A. A new approach for static voltage stability assessment in distribution networks. Int. Trans. Electr. Energy Syst. 2020, 30, 21. [Google Scholar] [CrossRef]
- Kumar, S.; Kumar, A.; Sharma, N.K. A novel method to investigate voltage stability of IEEE-14 bus wind integrated system using PSAT. Front. Energy 2020, 14, 410–418. [Google Scholar] [CrossRef]
- Xue, A.; Yue, L.; Zhang, J.; Cui, J.; Li, Z.; Li, Y.; Gao, L.; Lin, W.; Ren, X. A New Quantitative Analysis Method for Overvoltage in Sending End Electric Power System with UHVDC. IEEE Access 2020, 8, 145898–145908. [Google Scholar] [CrossRef]
- Rodriguez-Garcia, L.; Perez-Londono, S.; Mora-Florez, J. An optimization-based approach for load modelling dependent voltage stability analysis. Electr. Power Syst. Res. 2019, 177, 10. [Google Scholar] [CrossRef]
- Kessel, P.; Glavitsch, H. Estimating the voltage stability of a power system. IEEE Trans. Power Deliv. 1986, 1, 346–354. [Google Scholar] [CrossRef]
- Li, Y.; Fu, L.; Meng, K.; Dong, Z.Y. Assessment and Enhancement of Static Voltage Stability With Inverter-Based Generators. IEEE Trans. Power Syst. 2021, 36, 2737–2740. [Google Scholar] [CrossRef]
- Chu, S.; Yang, D.; Ge, W.C.; Liu, C.; Cai, G.W.; Kou, L. Global sensitivity analysis of voltage stability in the power system with correlated renewable energy. Electr. Power Syst. Res. 2021, 192, 10. [Google Scholar]
- Parihar, S.S.; Malik, N. Optimal allocation of renewable DGs in a radial distribution system based on new voltage stability index. Int. Trans. Electr. Energy Syst. 2020, 30, 19. [Google Scholar] [CrossRef]
- Hemmatpour, M.H.; Mohammadian, M.; Gharaveisi, A.A. Simple and efficient method for steady-state voltage stability analysis of islanded microgrids with considering wind turbine generation and frequency deviation. IET Gener. Transm. Distrib. 2016, 10, 1691–1702. [Google Scholar] [CrossRef]
- Qin, W.; Dong, D.; Mi, X. Voltage Stability Analysis of Islanded Microgrid. In Proceedings of the International Conference on Mechatronics and Semiconductor Materials (ICMSCM 2013), Xian, China, 28–29 September 2013. [Google Scholar]
- Xu, X.; Yan, Z.; Shahidehpour, M.; Wang, H.; Chen, S.J. Power System Voltage Stability Evaluation Considering Renewable Energy With Correlated Variabilities. IEEE Trans. Power Syst. 2018, 33, 3236–3245. [Google Scholar] [CrossRef]
- Wafaa, M.B.; Dessaint, L.A. Approach to dynamic voltage stability analysis for DFIG wind parks integration. IET Renew. Power Gener. 2018, 12, 190–197. [Google Scholar] [CrossRef]
- Petean-Pina, A.; Opathella, C.; Venkatesh, B.; IEEE. Effect of Wind Generation Uncertainty on Voltage Stability—A Singular Value Analysis. In Proceedings of the 2018 IEEE Electrical Power and Energy Conference, Toronto, ON, Canada, 10–11 October 2018. [Google Scholar]
- Serem, N.; Letting, L.K.; Munda, J. Voltage Profile and Sensitivity Analysis for a Grid Connected Solar, Wind and Small Hydro Hybrid System. Energies 2021, 14, 3555. [Google Scholar] [CrossRef]
- Selim, A.; Kamel, S.; Jurado, F. Voltage stability analysis based on optimal placement of multipleDGtypes using hybrid optimization technique. Int. Trans. Electr. Energy Syst. 2020, 30, 20. [Google Scholar] [CrossRef]
- Rahman, S.; Saha, S.; Islam, S.N.; Arif, M.T.; Mosadeghy, M.; Haque, M.E.; Oo, A.M.T. Analysis of Power Grid Voltage Stability With High Penetration of Solar PV Systems. IEEE Trans. Ind. Appl. 2021, 57, 2245–2257. [Google Scholar] [CrossRef]
- Qin, B.Y.; Li, H.Y.; Zhang, X.M.; Ding, T.; Ma, K.; Mei, S.W. Quantitative short-term voltage stability analysis of power systems integrated with DFIG-based wind farms. IET Gener. Transm. Distrib. 2020, 14, 4264–4272. [Google Scholar] [CrossRef]
- Muhammed, A.O.; Rawa, M. A Systematic PVQV-Curves Approach for Investigating the Impact of Solar Photovoltaic-Generator in Power System Using PowerWorld Simulator. Energies 2020, 13, 2662. [Google Scholar] [CrossRef]
- Huang, W.J.; Hill, D.J. Network-based analysis of long-term voltage stability considering loads with recovery dynamics. Int. J. Electr. Power Energy Syst. 2020, 119, 9. [Google Scholar] [CrossRef]
- Gumilar, L.; Sholeh, M.; Rumokoy, S.N.; Monika, D. Analysis Voltage Stability in the Interconnection of Battery Charging Station and Renewable Energy. In Proceedings of the 2020 2nd International Conference on Cybernetics and Intelligent System (ICORIS), Manado, Indonesia, 27–28 October 2020; IEEE: New York, NY, USA, 2020; pp. 57–62. [Google Scholar]
- Vieira, F.A. Voltage Stability Analysis for DP Mobile Offshore Drilling Units Using the Continuous Power Flow. In Proceedings of the 2019 IEEE Electric Ship Technologies Symposium (ESTS), Washington, DC, USA, 14–16 August 2019; IEEE: New York, NY, USA, 2019; pp. 165–171. [Google Scholar]
- Kazmi, S.; Khawaja, A.W.; Haider, Z.M.; Tauheed ur, R.; Kazmi, S. Voltage Stability of Wind Turbine based Micro Grid Using Simulation Platforms. In Proceedings of the 2019 International Conference on Power Generation Systems and Renewable Energy Technologies (PGSRET), Istanbul, Turkey, 26–27 August 2019; IEEE: New York, NY, USA, 2019; pp. 303–308. [Google Scholar]
- Singh, K.; Bhuyan, S.; Kumar, M.N.; Mishra, S. Analysis of Voltage Stability in Radial Distribution System for Hybrid Microgrid. In Advances in Smart Grid and Renewable Energy; SenGupta, S., Zobaa, A.F., Sherpa, K.S., Bhoi, A.K., Eds.; Lecture Notes in Electrical Engineering; Springer: New York, NY, USA, 2018; Volume 435, pp. 49–55. [Google Scholar]
- Nikkhah, S.; Rabiee, A. Optimal wind power generation investment, considering voltage stability of power systems. Renew. Energy 2018, 115, 308–325. [Google Scholar] [CrossRef]
- Hammad, M.; Harb, A. Static Analysis for Voltage Stability of the Northern Jordanian Power System. In Proceedings of the 2018 9th International Renewable Energy Congress, Hammamet, Tunisia, 20–22 March 2018; IEEE: New York, NY, USA, 2018. [Google Scholar]
- Ghaffarianfar, M.; Hajizadeh, A. Voltage Stability of Low-Voltage Distribution Grid with High Penetration of Photovoltaic Power Units. Energies 2018, 11, 1960. [Google Scholar] [CrossRef] [Green Version]
- Barbaro, M.; Castro, R. Design optimisation for a hybrid renewable microgrid: Application to the case of Faial island, Azores archipelago. Renew. Energy 2020, 151, 434–445. [Google Scholar] [CrossRef]
- Woyte, A.; Van Thong, V.; Belmans, R.; Nijs, J. Voltage fluctuations on distribution level introduced by photovoltaic systems. IEEE Trans. Energy Convers. 2006, 21, 202–209. [Google Scholar] [CrossRef]
- Petinrin, J.; Shaabanb, M. Impact of renewable generation on voltage control in distribution systems. Renew. Sustain. Energy Rev. 2016, 65, 770–783. [Google Scholar] [CrossRef]
- Shivam; Dahiya, R. Stability analysis of islanded DC microgrid for the proposed distributed control strategy with constant power loads. Comput. Electr. Eng. 2018, 70, 151–162. [Google Scholar] [CrossRef]
- Alzahrani, S.; Shah, R.; Mithulananthan, N. Exploring the Dynamic Voltage Signature of Renewable Rich Weak Power System. IEEE Access 2020, 8, 216529–216542. [Google Scholar] [CrossRef]
- Sinder, R.L.; Assis, T.M.L.; Taranto, G.N. Impact of photovoltaic systems on voltage stability in islanded distribution networks. J. Eng.-JOE 2019, 2019, 5023–5027. [Google Scholar] [CrossRef]
- Katiraei, F.; Iravani, M.R.; Lehn, P.W. Micro-grid autonomous operation during and subsequent to islanding process. IEEE Trans. Power Deliv. 2005, 20, 248–257. [Google Scholar] [CrossRef]
- Sinha, A.K.; Amita, A. Transient Stability Improvement of Grid Using Photo-Voltaic Solar Farm. In Proceedings of the 2018 International Conference on Intelligent Circuits and Systems (ICICS), Phagwara, India, 19–20 April 2018; IEEE: New York, NY, USA, 2018; pp. 366–371. [Google Scholar]
- Lu, S.D.; Wang, M.H.; Tai, C.Y.; Tsou, M.C.; Gu, F.C.; IEEE. Formulation of Low Voltage Ride-Through Curve Considering Offshore Wind Farms Integrated into an Islanding Power System-A Case Study in Taiwan. In Proceedings of the 2018 International Symposium on Computer, Consumer and Control, Taichung, Taiwan, 6–8 December 2018; IEEE: New York, NY, USA, 2018; pp. 117–120. [Google Scholar]
- Lekhema, G.R.; Cronje, W.A.; Korir, I.; ASME. High Reliability Micro-Grid for a Nuclear Facility Emergency Power Supply. In Proceedings of the 26th International Conference on Nuclear Engineering (ICONE-26), London, UK, 22–26 July 2018. [Google Scholar]
- Mokeke, S.; Thamae, L.Z. The impact of intermittent renewable energy generators on Lesotho national electricity grid. Electr. Power Syst. Res. 2021, 196, 12. [Google Scholar] [CrossRef]
- Liu, P.; Yang, C.E. LMI-based robust voltage tracking control for a class of renewable energy systems. J. Chin. Inst. Eng. 2019, 42, 107–118. [Google Scholar] [CrossRef]
- Kang, S.; Kim, J.; Park, J.W.; Baek, S.M. Reactive Power Management Based on Voltage Sensitivity Analysis of Distribution System with High Penetration of Renewable Energies. Energies 2019, 12, 1493. [Google Scholar] [CrossRef] [Green Version]
- Lu, X.Y.; Wang, X.Z.; Rimorov, D.; Sheng, H.; Joos, G. Synchrophasor-Based State Estimation for Voltage Stability Monitoring in Power Systems. In Proceedings of the 2018 North American Power Symposium, Fargo, ND, USA, 9–11 September 2018; IEEE: New York, NY, USA, 2018. [Google Scholar]
- Qi, B.Y.; Hasan, K.N.; Milanovic, J.V. Identification of Critical Parameters Affecting Voltage and Angular Stability Considering Load-Renewable Generation Correlations. IEEE Trans. Power Syst. 2019, 34, 2859–2869. [Google Scholar] [CrossRef] [Green Version]
- Eajal, A.A.; Yazdavar, A.H.; El-Saadany, E.F.; Ponnambalam, K. On the Loadability and Voltage Stability of Islanded AC-DC Hybrid Microgrids During Contingencies. IEEE Syst. J. 2019, 13, 4248–4259. [Google Scholar] [CrossRef]
- Coumont, M.; Bennewitz, F.; Hanson, J.; Power, I.; Energy, S. Influence of Different Fault Ride-Through Strategies of Converter-Interfaced Distributed Generation on Short-Term Voltage Stability. In Proceedings of the 2019 IEEE Pes Innovative Smart Grid Technologies Europe, Bucharest, Romania, 29 September–2 October 2019; IEEE: New York, NY, USA, 2019. [Google Scholar]
- Moirangthem, J.; Krishnanand, K.R.; Panda, S.K.; Amaratunga, G. Voltage Stability Assessment by Holomorphically Estimating the Bifurcation Point of Electric Grids. In Proceedings of the 2018 IEEE International Conference on Environment and Electrical Engineering and 2018 IEEE Industrial and Commercial Power Systems Europe (EEEIC/I&CPS Europe), Palermo, Italy, 12–15 June 2018; IEEE: New York, NY, USA, 2018. [Google Scholar]
- Banerjee, S.; Das, D.; Chanda, C.K. Voltage stability of radial distribution networks for different types of loads. Int. J. Power Energy Convers. 2014, 5, 70–87. [Google Scholar] [CrossRef]
- Qiu, X.-Y.; Wang, J.; Liu, H.-C.; Li, X.-Y. Voltage stability analysis of radial distribution networks. J. Sichuan Univ. Eng. Sci. Ed. 2002, 34, 100–103. [Google Scholar]
- Ramirez, J.P.; Hernandez, J.H.T. Review of Methodologies for the Analysis of Voltage Stability in Power Systems. In Proceedings of the 2013 IEEE International Autumn Meeting on Power Electronics and Computing, Morelia, Mexico, 13–15 November 2013; IEEE: New York, NY, USA, 2013. [Google Scholar]
- Hasani, M.; Parniani, M. Method of combined static and dynamic analysis of voltage collapse in voltage stability assessment. In Proceedings of the 2005 IEEE/PES Transmission & Distribution Conference & Exposition: Asia and Pacific, Dalian, China, 18 August 2005; pp. 1–6. [Google Scholar]
Ref | VSI/Method | Analytical Foundation | Index Type | Equation | Stability Threshold |
---|---|---|---|---|---|
[78] | Jacobian matrix singular point | Static | , | ||
[79] | -index | Load flow equation | Static | ||
[75] | TVAI | Approximated step function | Dynamic | ||
[73] | VSI | Two-bus equivalent circuit | Static | ||
[80] | VSI | Two-bus equivalent circuit | Static | ||
[60] | Energy function | Static | |||
[43] | Load flow Jacobian matrix | Static | Ranges from 0 to 1 (Stability limit point to no load) | ||
[81] | Saddle-node and finite induced bifurcation | Static | Ranges from 0.25 to 0 (No load to collapse point) | ||
[82] | Sensitivity matrix | Linearized load flow equation | Static | If the sensitivity measure is positive, the system is stable; if not, the system is unstable. | |
[83] | GSA | Optimal load flow and probabilistic model | Static | ||
[84] | IB index | Traditional IB index | Dynamic | If the load impedance is located inside the circle with a radius , the system is unstable. | |
[85] | MSV(Minimum Singular Value) | Singular point of Jacobian matrix | Dynamic | ΔΣ is the change in singular value due to the uncertainty of wind power. MSV is used to assess whether the added wind turbine generator has a positive or negative effect on the voltage stability of the power system. | |
[86] | V–Q modal analysis, V–Q curve analysis | V–Q modal analysis, V–Q curve analysis | Static | For modal analysis: A positive value means the system is stable. A negative value means the system is unstable. For the V–Q curve, the reactive power margin can show the voltage collapse margin. | |
[87] | P–V Curve theory | Static | This essay uses the combined method to conduct the voltage stability analysis for the P–V curve; the active power margin can show the voltage collapse margin. For VSI, the larger the voltage stability index, the more stable the system. | ||
[88] | Monte Carlo based voltage stability analysis | Eigenvalue, reactive power margin, real and reactive power loss Monte Carlo simulation | Static | For the modal analysis: A positive value means the system is stable. A negative value means the system is unstable. For the V–Q curve, the reactive power margin can show the voltage collapse margin. | |
[89] | LILO | Integral-integral estimate theory, LIOS properties | Dynamic | The system outputs satisfy the equation | |
[90] | VPS | P–V and V–Q curve | Static | The active power margin can show the margin of voltage collapse | |
[74] | Line stability index | Static | , the system is stable , the system is stable FVSI is close to 1, and the system is close to instability. | ||
[91] | Voltage Stability Condition | Steady-state load properties, Lyapunov stability theory | Static | Assuming that for any branch (i,j), the power system is at a QV regular operating point, if the following condition is satisfied: | |
[92] | P–V and V–Q curve | P–V and V–Q curve | Static | The active power margin can show the margin of voltage collapse. | |
[5] | PV analysis | Continuation load flow algorithm | Static | The active power margin can show the margin of voltage collapse. | |
[93] | PV analysis | Continuation load flow algorithm | Static | The active power margin can show the margin of voltage collapse. | |
[94] | Software-based Simulation method | Software function | Static | N/A | Compare the system voltage plots with the voltage sag or UCAP between simulation software packages. |
[95] | VSI | Optimal load flow | Static | ||
[96] | Simulation Software-based method | Modal Analysis | Static | N/A | Determined using the General Algebraic Modeling System (GAMS) optimization software and analyzed with the CONOPT4 solver. |
[97] | P–V and V–Q curve | P–V and V–Q curve | Static | The active power margin can show the margin of voltage collapse. | |
[98] | P–V curve | Static | |||
[54] | Topological model | Static | The number of intersection points between the unit circle and the function’s curve can show stability. The presence of zero intersection points indicates instability, and the presence of two intersection points indicates stability. The presence of one intersection point indicates a stable margin. | ||
[34] | VSI | Time-synchronized measurements | Dynamic | The system is stable if the VSI is 1. The system is unstable if the VSI is 0. | |
[70] | Jacobian matrix singular point, PDF | Static | The formulation can measure the loading margin. |
Operation Mode | Type of DG(s) | References |
---|---|---|
Grid-Connected | PV | [43,78,88,90,97,98] |
Wind | [5,54,74,84,85,89,94,96] | |
PV, Wind | [70,79,80,83,92] | |
PV, Hydro | [75] | |
PV, Wind, Hydro | [86] | |
Islanded | PV | [60] |
Wind | [81] | |
PV, Wind | [34,82] |
Voltage Stability Index | Formulation | Calculation Runtime (Units) |
---|---|---|
Index 2003 | 0.8171 | |
Index 2014 | 0.8172 | |
Novel Index | 0.7997 |
Voltage Stability Analysis Method | Simulation Result |
---|---|
L-index method | This method requires the least amount of calculation and has a good level of consistency with most other methods. |
Modal analysis | The method is most suitable for determining the strongest and weakest buses in the system. |
V–Q sensitivity analysis | This scheme has difficulty distinguishing different stability modes in the system and may be misleading when applied to large systems with multiple regions. |
Power flow based methods | Too many system parameters are considered in the calculation, and the accuracy is relatively low. |
Dynamic voltage stability analysis | Cannot accurately calculate the stability margin for each bus. Overlapped time-domain actions in the interconnected networks may exist, leading to the wrong analysis result. |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Liang, X.; Chai, H.; Ravishankar, J. Analytical Methods of Voltage Stability in Renewable Dominated Power Systems: A Review. Electricity 2022, 3, 75-107. https://doi.org/10.3390/electricity3010006
Liang X, Chai H, Ravishankar J. Analytical Methods of Voltage Stability in Renewable Dominated Power Systems: A Review. Electricity. 2022; 3(1):75-107. https://doi.org/10.3390/electricity3010006
Chicago/Turabian StyleLiang, Xinyu, Hua Chai, and Jayashri Ravishankar. 2022. "Analytical Methods of Voltage Stability in Renewable Dominated Power Systems: A Review" Electricity 3, no. 1: 75-107. https://doi.org/10.3390/electricity3010006
APA StyleLiang, X., Chai, H., & Ravishankar, J. (2022). Analytical Methods of Voltage Stability in Renewable Dominated Power Systems: A Review. Electricity, 3(1), 75-107. https://doi.org/10.3390/electricity3010006