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Research Article

Power hardware in the loop methodology applied in the integration of wind energy conversion system under fluctuations: a case study

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Pages 2767-2791 | Received 25 May 2023, Accepted 18 Jan 2024, Published online: 30 Jan 2024

References

  • Abad, G., J. Lopez, M. Rodriguez, L. Marroyo, and G. Iwanski. 2011. Doubly fed induction machine: Modeling and control for wind energy generation applications. Wiley. doi:10.1002/9781118104965.
  • Ahmed, S. D., F. S. M. Al-Ismail, M. Shafiullah, F. A. Al-Sulaiman, and I. M. El-Amin. 2020. Grid integration challenges of wind energy: A review. Institute of Electrical and Electronics Engineers Access 8:10857–78. doi:10.1109/ACCESS.2020.2964896.
  • Alanani, M., R. Errouissi. 2023. Mitigation of 2w-ripple in pmsg-based wind turbine under unbalanced grid voltages using dobc along with notch filter. IEEE EUROCON 2023-20th International Conference on Smart Technologies, 484–89. Torino, Italy: IEEE.
  • Ardjal, A., A. Merabet, M. Bettayeb, R. Mansouri, and L. Labib. 2019. Design and implementation of a fractional nonlinear synergetic controller for generator and grid converters of wind energy conversion system. Energy 186:115861. doi:10.1016/j.energy.2019.115861.
  • Bodha, V. R., and N. R. Kuthuri. 2019. Predictive back-to-back SCHVC for renewable wind power system for scrutinizing quality and reliability, energy sources, part A: Recovery. Utilization, and Environmental Effects 41 (24):3058–75. doi:10.1080/15567036.2019.1586013.
  • Buchmayr, A., E. Verhofstadt, L. Van Ootegem, G. Thomassen, S. Taelman, and J. Dewulf. 2022. Exploring the global and local social sustainability of wind energy technologies: An application of a social impact assessment framework. Applied Energy 312:118808. doi:10.1016/j.apenergy.2022.118808.
  • Chakraborty, S., S. Mukhopadhyay, and S. K. Biswas. 2023. A hybrid compensator for unbalanced ac distribution system with renewable power. IEEE Transactions on Industry Applications 59 (1):544–53. doi:10.1109/TIA.2022.3207704.
  • Cheng, H., M. Huang, Y. Zhang, W. Wu. 2023. An optimized voltage support strategy for pmsg-based wind turbines under unbalanced grid fault. 2023 IEEE 14th International Symposium on Power Electronics for Distributed Generation Systems (PEDG), 331–36. Shanghai, China: IEEE.
  • Chen, C., H. Liu, L. Wu, Y. Ju, X. Deng. 2019. Impacts of sequence model for type-3 and type-4 wind turbines on voltage unbalance in large-scale wind farms. 8th Renewable Power Generation Conference (RPG 2019), 1–5. Shanghai, China: IET.
  • Ciupăgeanu, D.-A., G. Lăzăroiu, and L. Barelli. 2019. Wind energy integration: Variability analysis and power system impact assessment. Energy 185:1183–96. doi:10.1016/j.energy.2019.07.136.
  • De Freitas, T. R., P. J. Menegáz, and D. S. Simonetti. 2016. Rectifier topologies for permanent magnet synchronous generator on wind energy conversion systems: A review. Renewable and Sustainable Energy Reviews 54:1334–44. doi:10.1016/j.rser.2015.10.112.
  • D. O. de la Federación (DOF). 2023. resoluciÓn núm. res/550/2021: Código de red. Accessed September 2, 2023. https://www.dof.gob.mx/nota_detalle.php?codigo=5639920 fecha=31/12/2021#gsc.tab=0.
  • Dong, S., Y. Li, A. Wang, W. Xi. 2015. Control of pmsg wind turbines based on reduced order resonant controllers under unbalanced grid voltage conditions. 2015 IEEE 11th international conference on power electronics and drive systems, 326–329. Sydney, NSW, Australia: IEEE.
  • Elmorshedy, M. F., S. M. Allam, E. M. Rashad. 2016. Performance analysis and control of a stand-alone wind-driven PMSG including unbalanced conditions. Proceedings - 2016 22nd International Conference on Electrical Machines, ICEM 2016, 1145–51 doi:10.1109/ICELMACH.2016.7732669.
  • Enríquez, A., J. C. Ramírez, and J. Rosellón. 2019. Costos de generación, inversión Y Precios del sector eléctrico en méxico. Investigación Económica 78 (309):58–79. doi:10.22201/fe.01851667p.2019.309.70119.
  • Famoso, F., S. Brusca, D. D’Urso, A. Galvagno, and F. Chiacchio. 2020. A novel hybrid model for the estimation of energy conversion in a wind farm combining wake effects and stochastic dependability. Applied Energy 280:115967. doi:10.1016/j.apenergy.2020.115967.
  • Fathy, A., H. Rezk, D. Yousri, T. Kandil, and A. G. Abo-Khalil. 2022. Real-time bald eagle search approach for tracking the maximum generated power of wind energy conversion system. Energy 249:123661. doi:10.1016/j.energy.2022.123661.
  • Hannan, M., M. H. Lipu, P. J. Ker, R. Begum, V. G. Agelidis, and F. Blaabjerg. 2019. Power electronics contribution to renewable energy conversion addressing emission reduction: Applications, issues, and recommendations. Applied Energy 251:113404. doi:10.1016/j.apenergy.2019.113404.
  • He, Y.-F., Y. Chen, C.-Y. Ma, Z.-Y. Yan 2015. Control strategy of vsc applied in pmsg-based wind power generation considering three-phase unbalance and harmonics. International Conference on Renewable Power Generation (RPG 2015), 1–5. Beijing: IET.
  • Hu, Y., Z. Zhu, and M. Odavic. 2017. Compensation of unbalanced impedance of asymmetric wind power pmsg compensated by external circuits in series. CES Transactions on Electrical Machines and Systems 1 (2):180–88. doi:10.23919/TEMS.2017.7961340.
  • Kang, J., D. Han, Y. Suh, B. Jung, J. Kim, J. Park, Y. Choi. 2014. Negative sequence current injection control algorithm compensating for unbalanced pcc voltage in medium voltage pmsg wind turbines. 2014 International Power Electronics Conference (IPEC-Hiroshima 2014-ECCE ASIA), 1185–92. Hiroshima, Japan: IEEE
  • Kang, J., D. Han, Y. Suh, B. Jung, J. Kim, J. Park, Y. Choi, 2015, Control algorithm for improving voltage quality of pmsg wind turbines under distorted network. 2015 IEEE Applied Power Electronics Conference and Exposition (APEC), 1302–09. Charlotte, NC, USA: IEEE.
  • Liu, J., C. Zhao, and Z. Xie. 2021. Power and current limiting control of wind turbines based on pmsg under unbalanced grid voltage. Institute of Electrical and Electronics Engineers Access 9:9873–83. doi:10.1109/ACCESS.2021.3049839.
  • Luo, J., H. Zhao, X. Lu, S. Gao, Q. Ma, V. Terzija. 2019. A review of low voltage ride through in dfig under unbalanced grid faults. 2019 IEEE PES GTD Grand International Conference and Exposition Asia (GTD Asia), 718–23. Bangkok, Thailand.
  • Magana-Gonzalez, R. C., O. Rodriguez-Hernandez, and D. A. Canul-Reyes. 2023. Analysis of seasonal variability and complementarity of wind and solar resources in Mexico. Sustainable Energy Technologies and Assessments. doi:10.2139/ssrn.4510329.
  • Miranda, R. F., N. M. Salgado-Herrera, O. Rodríguez-Hernández, J. R. Rodríguez-Rodríguez, M. Robles, D. Ruiz-Robles, and V. Venegas-Rebollar. 2022. Distributed generation in low-voltage dc systems by wind energy in the baja california peninsula, mexico. Energy 242:122530. doi:10.1016/j.energy.2021.122530.
  • Nasiri, M., J. Milimonfared, and S. Fathi. 2015. A review of low-voltage ride-through enhancement methods for permanent magnet synchronous generator based wind turbines. Renewable and Sustainable Energy Reviews 47:399–415. doi:10.1016/j.rser.2015.03.079.
  • Neumann, T., T. Wijnhoven, G. Deconinck, and I. Erlich. 2015. Enhanced dynamic voltage control of type 4 wind turbines during unbalanced grid faults. IEEE Transactions on Energy Conversion 30 (4):1650–59. doi:10.1109/TEC.2015.2470126.
  • Peng, Y., Y. Li, K. Y. Lee, Y. Tan, Y. Cao, M. Wen, Y. Shen, M. Zhang, and W. Li. 2020. Coordinated control strategy of pmsg and cascaded h-bridge statcom in dispersed wind farm for suppressing unbalanced grid voltage. IEEE Transactions on Sustainable Energy 12 (1):349–59. doi:10.1109/TSTE.2020.2995457.
  • Rani, P., V. P. Arora, and N. K. Sharma. 2022. Improved dynamic performance of permanent magnet synchronous generator based grid connected wind energy system, energy sources, part A: Recovery. Utilization, and Environmental Effects:1–20. doi:10.1080/15567036.2021.2022814.
  • Rodríguez-Contreras, S. F., N. M. Salgado-Herrera, M. Robles, J. R. Rodríguez-Rodríguez, N. Gonzalez-Cabrera, and M. A. Santoyo-Anaya. 2022. Photovoltaic energy conversion system integrated into unbalanced distribution electrical networks through hardware in the loop. IEEE Journal of Emerging and Selected Topics in Power Electronics 10 (5):5614–25. doi:10.1109/JESTPE.2022.3157268.
  • Saheb-Koussa, D., M. Haddadi, M. Belhamel, S. Hadji, and S. Nouredine. 2010. Modeling and simulation of the fixed-speed wecs (wind energy conversion system): Application to the Algerian Sahara area. Energy 35 (10):4116–25. doi:10.1016/j.energy.2010.06.032.
  • Sánchez-Conde, L., J. Rodríguez-Rodríguez, N. Salgado-Herrera, J. Domínguez-Lozoya, E. Mendoza-Baldwin. 2021. Marine energy conversion system based on magnetohydrodynamic generators array interconnected into distribution electrical networks. 2021 IEEE International Autumn Meeting on Power, Electronics and Computing (ROPEC), 5, 1–5. doi:10.1109/ROPEC53248.2021.9668055.
  • Shanmugapriya, P., J. Baskaran, C. Nayanatara. 2019. A control strategy adopted for improving transient stability in EESG based wind turbines. 2019 International Conference on Computation of Power, Energy, Information and Communication (ICCPEIC), 1–7. doi:10.1109/ICCPEIC45300.2019.9082371.
  • Silva, R. M., A. F. Cupertino, G. M. Rezende, C. V. Sousa, and V. F. Mendes. 2020. Power control strategies for grid connected converters applied to full-scale wind energy conversion systems during LVRT operation. Electric Power Systems Research 184 (January):106279. doi:10.1016/j.epsr.2020.106279.
  • Sridharan, S., V. V. Prabhu, and P. Velmurugan. 2021. Efficient maximum power point tracking in grid connected switched reluctance generator in wind energy conversion system: An enhanced mayfly algorithm transient search optimization, energy sources, part A: Recovery. Utilization, and Environmental Effects :1–18. doi:10.1080/15567036.2021.2008059.
  • Sudipta Mohanty, M. R. N., and D. Behura. 2023. Search group algorithm for optimal allocation of battery energy storage with renewable sources in an unbalanced distribution system, energy sources, part A: Recovery. Utilization, and Environmental Effects 45 (1):1131–49. doi:10.1080/15567036.2023.2175929.
  • Su, X., Z. Wang, L. Ding, C. Jia. 2020. Voltage support control strategy of pmsg wind turbines during unbalanced grid fault. 2020 5th Asia Conference on Power and Electrical Engineering (ACPEE), 678–683. Chengdu, China: IEEE.
  • Tourou, P., C. Sourkounis. 2014. Review of control strategies for dfig-based wind turbines under unsymmetrical grid faults. 2014 Ninth International Conference on Ecological Vehicles and Renewable Energies (EVER), 1–9. Monte-Carlo, Monaco.
  • Tripathi, S. M., A. N. Tiwari, and D. Singh. 2015. Grid-integrated permanent magnet synchronous generator based wind energy conversion systems: A technology review. Renewable and Sustainable Energy Reviews 51:1288–305. doi:10.1016/j.rser.2015.06.060.
  • Yaramasu, V., and B. Wu. 2017. Modeling of wind generators for model predictive control. John Wiley & Sons. doi:10.1002/9781119082989.ch6.
  • Yazdani, A., and R. Iravani. 2010. Voltage-sourced converters in power systems: Modeling, control, and applications. Hoboken, New Jersey and Canada: John Wiley & Sons.
  • Zeng, X., J. Yao, Z. Chen, W. Hu, Z. Chen, and T. Zhou. 2016. Co-ordinated control strategy for hybrid wind farms with pmsg and fsig under unbalanced grid voltage condition. IEEE Transactions on Sustainable Energy 7 (3):1100–10. doi:10.1109/TSTE.2016.2527041.
  • Zhang, Z., R. Kennel. 2015. Direct model predictive control of three-level npc back-to-back power converter pmsg wind turbine systems under unbalanced grid. 2015 IEEE International Symposium on Predictive Control of Electrical Drives and Power Electronics (PRECEDE), 97–102. Valparaiso, Chile: IEEE.

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