Transient Stability Improvement of a Hybrid Power System: A Novel Configuration of Compensating Type Custom Power Devices and Fault Current Limiters.
الموضوعات :Shahab Khormali 1 , Salman Amirkhan 2 , Ramin Mokhtari 3 , Hassan Pourvali Souraki 4 , Tatiana Kovacikova 5 , masoud radmehr 6 , Azadeh Sadat Naeimi 7
1 - Department of International Research Projects (ERAdiate+), University of Žilina, Žilina, Slovakia.
2 - Department of Electrical Engineering, Aliabad Katoul Branch, Islamic Azad University, Aliabad Katoul, Iran
Energy Research Center, Aliabad Katoul Branch, Islamic Azad University, Aliabad Katoul, Iran
3 - Department of Electrical Engineering, Aliabad Katoul Branch, Islamic Azad University, Aliabad Katoul, Iran
Energy Research Center, Aliabad Katoul Branch, Islamic Azad University, Aliabad Katoul, Iran
4 - MAPNA Operation and Maintenance Co. (O&M), Tehran, Iran
5 - Department of International Research Projects (ERAdiate+), University of Žilina, Žilina, Slovakia.
6 - Department of Electrical Engineering, Aliabad Katoul Branch, Islamic Azad University, Aliabad Katoul, Iran
Energy Research Center, Aliabad Katoul Branch, Islamic Azad University, Aliabad Katoul, Iran
7 - Department of Physics, Aliabad Katoul Branch, Islamic Azad University, Aliabad Katoul, Iran
Energy Research Center, Aliabad Katoul Branch, Islamic Azad University, Aliabad Katoul, Iran
الکلمات المفتاحية: transient stability, Dynamic Voltage Restorer, Custom Power Devices, fault current limiter, unified power quality conditioner,
ملخص المقالة :
Applying distributed energy resources (DERs) to power systems has been promoted as a promising option to meet the growing electricity demand. Despite significant economic, environmental, and resiliency benefits, integrating DER, including power electronic devices, into the existing power networks causes stability and power quality issues. Therefore, to meet stability and power quality standard limits, a sort of compensation using cost-effective and energy-efficient technologies and power electronics-based concepts is needed. This paper presents a novel configuration of compensating type custom power devices (CPDs) and fault current limiters (FCLs) for limiting balanced and unbalanced faults and improving the transient performance of distributed generation (DG) sources in a hybrid power system. Moreover, three power grid operational scenarios are addressed to reflect the impact of the type of fault and variable power generation capacity of DGs on transient stability. Four configurations are implemented using two FCLs (BFCL and SFCL) and two energy compensation devices (DVR and UPQC). The transient performance of involved DGs with and without applying proposed compensation methods is simulated. Simulation experiments were carried out using MATLAB/SIMULINK software. The simulation results indicate that UPQC- BFCL is the best solution in all scenarios that improve the transient stability of the proposed power system under both balanced and unbalanced faults.
[1] V. Telukunta, J. Pradhan, A. Agrawal, M. Singh, and S. G. Srivani, “Protection challenges under bulk penetration of renewable energy resources in power systems: A review,” CSEE Journal of Power and Energy Systems, vol. 3, no. 4, pp. 365–379, 2017, doi: 10.17775/cseejpes.2017.00030.
[2] X. Liang, “Emerging Power Quality Challenges Due to Integration of Renewable Energy Sources,” IEEE Transactions on Industry Applications, vol. 53, no. 2, pp. 855–866, 2017, doi: 10.1109/TIA.2016.2626253.
[3] M. S. Alam, M. A. Y. Abido, and I. El-Amin, “Fault current limiters in power systems: A comprehensive review,” Energies, vol. 11, no. 5, 2018, doi: 10.3390/en11051025.
[4] T. M. Masaud and R. D. Mistry, “Fault current contribution of Renewable Distributed Generation: An overview and key issues,” 2016 IEEE Conference on Technologies for Sustainability, SusTech 2016, pp. 229–234, 2017, doi: 10.1109/SusTech.2016.7897172.
[5] S. Xia, Q. Zhang, S. T. Hussain, B. Hong, and W. Zou, “Impacts of integration of wind farms on power system transient stability,” Applied Sciences (Switzerland), vol. 8, no. 8, 2018, doi: 10.3390/app8081289.
[6] M. K. Hossain and M. H. Ali, “Transient Stability Augmentation of PV/DFIG/SG-Based Hybrid Power System by Nonlinear Control-Based Variable Resistive FCL,” IEEE Transactions on Sustainable Energy, vol. 6, no. 4, pp. 1638–1649, 2015, doi: 10.1109/TSTE.2015.2463286.
[7] S. Yadav, G. K. Choudhary, and R. K. Mandal, “Review on Fault Current Limiters,” International Journal of Engineering Research & Technology (IJERT), vol. 3, no. 4, pp. 1595–1604, 2014.
[8] R. Rajan and F. M. Fernandez, “Power control strategy of photovoltaic plants for frequency regulation in a hybrid power system,” International Journal of Electrical Power and Energy Systems, vol. 110, no. January, pp. 171–183, 2019, doi: 10.1016/j.ijepes.2019.03.009.
[9] M. Zolfaghari, R. M. Chabanlo, M. Abedi, and M. Shahidehpour, “A Robust Distance Protection Approach for Bulk AC Power System Considering the Effects of HVDC Interfaced Offshore Wind Units,” IEEE Systems Journal, vol. 12, no. 4, pp. 3786–3795, 2018, doi: 10.1109/JSYST.2017.2760139.
[10] R. B. Leslie Hewitson, Mark Brown, Practical Power System Protection, 1st Editio. 2004.
[11] A. Abramovitz and K. Ma Smedley, “Survey of solid-state fault current limiters,” IEEE Transactions on Power Electronics, vol. 27, no. 6, pp. 2770–2782, 2012, doi: 10.1109/TPEL.2011.2174804.
[12] P. N. Vovos, H. Song, K. W. Cho, and T. S. Kim, “A network reconfiguration algorithm for the reduction of expected fault currents,” IEEE Power and Energy Society General Meeting, 2013, doi: 10.1109/PESMG.2013.6673000.
[13] P. N. Vovos and J. W. Bialek, “Impact of fault level constraints on the economic operation of power systems,” 2005 IEEE Russia Power Tech, PowerTech, vol. 21, no. 4, pp. 1600–1607, 2005, doi: 10.1109/PTC.2005.4524420.
[14] A. Safaei, M. Zolfaghari, M. Gilvanejad, and G. B. Gharehpetian, “A survey on fault current limiters: Development and technical aspects,” International Journal of Electrical Power and Energy Systems, vol. 118, no. December 2019, p. 105729, 2020, doi: 10.1016/j.ijepes.2019.105729.
[15] L. Chen et al., “Application of a modified flux-coupling type superconducting fault current limiter to transient performance enhancement of micro-grid,” Physica C: Superconductivity and its Applications, vol. 518, pp. 144–148, 2015, doi: 10.1016/j.physc.2015.02.051.
[16] D. H. Choi, J. I. Yoo, D. Kim, S. H. Lee, and J. W. Park, “Analysis on Effect of SFCL Applied to an Isolated Microgrid with a Dynamic Load Model,” IEEE Transactions on Applied Superconductivity, vol. 27, no. 4, pp. 13–16, 2017, doi: 10.1109/TASC.2017.2652488.
[17] L. Chen et al., “Application and Design of a Resistive-Type Superconducting Fault Current Limiter for Efficient Protection of a DC Microgrid,” vol. 29, no. 2, 2019.
[18] D. M. Yehia, D. A. Mansour, and S. Member, “Modeling and Analysis of Superconducting Fault Current Limiter for System Integration of Battery Banks,” vol. 28, no. 4, pp. 13–18, 2018.
[19] S. A. A. Shahriari et al., “Minimizing the Impact of Distributed Generation on Distribution Protection System by Solid State Fault Current Limiter,” pp. 7–13, 2010.
[20] M. M. R. Ahmed, G. A. Putrus, L. Ran, and L. Xiao, “Harmonic Analysis and Improvement of a New Solid-State Fault Current Limiter,” vol. 40, no. 4, pp. 1012–1019, 2004.
[21] G. Chen, D. Jiang, Z. Lu, Z. Wu, and A. Topology, “A New Proposal for Solid State Fault Current Limiter and Its Control Strategies.”
[22] J. P. Sharma and H. R. Kamath, “Influence of Solid State Fault Current Limiter on Grid Connected Photovoltaic System Protection,” Journal of Clean Energy Technologies, vol. 6, no. 3, pp. 254–257, 2018, doi: 10.18178/jocet.2018.6.3.470.
[23] W. P. Generation, A. R. Fereidouni, B. Vahidi, S. Member, and T. H. Mehr, “The Impact of Solid State Fault Current Limiter on Power Network With,” vol. 4, no. 2, pp. 1188–1196, 2013.
[24] A. M. Hamada, S. S. M. Ghoneim, S. A. Mohamed, S. Walid, and E. Abdellatif, “International Journal of Electrical Power and Energy Systems Performance analysis of three-phase hybrid fault current limiter with one commutation circuit,” International Journal of Electrical Power and Energy Systems, vol. 133, no. June, p. 107297, 2021, doi: 10.1016/j.ijepes.2021.107297.
[25] M. Ebrahimpour, B. Vahidi, S. Member, and S. H. Hosseinian, “A Hybrid Superconducting Fault Current Controller for DG Networks and Microgrids,” vol. 23, no. 5, 2013.
[26] P. M. Tripathi and K. Chatterjee, “International Journal of Electrical Power and Energy Systems Real-time implementation of ring based saturated core fault current limiter to improve fault ride through capability of DFIG system,” International Journal of Electrical Power and Energy Systems, vol. 131, no. March, p. 107040, 2021, doi: 10.1016/j.ijepes.2021.107040.
[27] Y. Pal, A. Swarup, S. Member, B. Singh, and S. Member, “A Review of Compensating Type Custom Power Devices for Power Quality Improvement.”
[28] S. Singh, “Various Custom Power Devices for Power Quality Improvement : A Review,” pp. 689–695, 2018.
[29] “29. View of Recent Trends in Power Quality Improvement Using Custom Power Devices and Its Performance Analysis.pdf.” .
[30] N. S. Chouhan, “Doubly fed induction generator with integrated energy storage system for smoothening of output power,” pp. 1–108, 2010.
[31] G. Rashid, S. Member, M. H. Ali, and S. Member, “Transient Stability Enhancement of Doubly Fed Induction Machine-Based Wind Generator by Bridge-Type Fault Current Limiter,” vol. 30, no. 3, pp. 939–947, 2015.
[32] K. Hossain and M. H. Ali, “Transient stability augmentation of PV / DFIG / SG-based hybrid power system by parallel-resonance bridge fault current limiter,” vol. 130, pp. 89–102, 2016.
[33] G. Didier and J. Lévêque, “Electrical Power and Energy Systems Influence of fault type on the optimal location of superconducting fault current limiter in electrical power grid,” International Journal of Electrical Power and Energy Systems, vol. 56, pp. 279–285, 2014, doi: 10.1016/j.ijepes.2013.11.018.
[34] A. Moghadasi, A. Sarwat, and J. M. Guerrero, “A comprehensive review of low-voltage-ride-through methods for fi xed-speed wind power generators,” Renewable and Sustainable Energy Reviews, vol. 55, pp. 823–839, 2016, doi: 10.1016/j.rser.2015.11.020.
[35] A. J. Laxmi, K. U. Rao, M. Sushama, and N. T. Devi, “Hardware Implementation Of Single Phase Dynamic Voltage Restorer,” pp. 204–209, 2010.
[36] A. A. Hussein and M. H. Ali, “Comparison among series compensators for fault ride through capability enhancement of wind generator systems,” International Journal of Renewable Energy Research, vol. 4, no. 3, pp. 767–776, 2014.