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Yıl 2025, Cilt: 13 Sayı: 1, 404 - 416, 24.03.2025
https://doi.org/10.29109/gujsc.1503575

Öz

Kaynakça

  • [1] R. K. Antar, “Multilevel Inverter with Unequal and Selected DC Voltage Sources Using Modified Absolute Sinusoidal PWM Technique,” 1st International Scientific Conference of Engineering Sciences - 3rd Scientific Conference of Engineering Science (ISCES), IEEE, pp. 62-67, January 2018.
  • [2] R. Al Badwawi, M. Abusara, and T. Mallick, “A Review of Hybrid Solar PV and Wind Energy System,” Smart Science, vol. 3, no. 3, pp. 127-138, 2015.
  • [3] M. Sami and M. A. Mallick, “Cascaded H-Bridge 11-level Multilevel Inverter,” International Journal of Engineering Research & Technology (IJERT), 2021.
  • [4] A. Bughneda, M. Salem, A. Richelli, D. Ishak, and S. Alatai, “Review of Multilevel Inverters for PV Energy System Applications,” Energies, MDPI, 2021.
  • [5] D. Ganesh and G. Chandra Sekhar, “Simulation of Three Phase Nine-level Inverter for Interfacing with Solar PV system,” International Journal of Innovative Research in Science, Engineering and Technology, 2017.
  • [6] A. N. and A. K. I., “Multi-input Inverter for Hybrid Wind-Photovoltaic Standalone System,” Proceedings of the Second International Conference on Computing Methodologies and Communication (ICCMC 2018).
  • [7] J. Sathik, S. H. E. Abdel Aleem, R. Shalchi Alishah, D. Almakhles, and K. Bertilsson, “A Multilevel Inverter Topology Using Diode Half-Bridge Circuit with Reduced Power Component,” Energies, MDPI, 2021.
  • [8] R. S. Jadhav and S. B. Patil, “Design and Implementation of PV-Wind Battery Hybrid System for off-grid and on-grid,” Proceedings of the Fourth International Conference on Inventive Systems and Control (ICISC 2020).
  • [9] M. Sandhu and T. Thakur, “Reduction of Harmonics In a Hybrid PV/Wind Microgrid Using a Modified Multilevel Inverter,” IEEE Electrical Power Energy Conference (EPEC), 2019.
  • [10] S. K. Gupta, K. Rathore, & P. Bansal, (2018). “Design and Analysis of a New 31-Level Asymmetrical Multilevel Inverter Topology with Different PWM Techniques.” Presented at the 2018 3rd International Innovative Applications of Computational Intelligence on Power, Energy and Controls with their Impact on Humanity (CIPECH). IEEE.
  • [11] Y. Kumar, M. Goyal, & R. Mishra, (2020). “Modified PV based hybrid multilevel inverters using multicarrier PWM strategy.” Presented at the 2020 4th international conference on electronics, communication and aerospace technology (ICECA). IEEE.
  • [12] W. Obaid, A. K. Hamid, & C. Ghenai, (2019). “Wind-Fuel-Cell-Solar Hybrid Electric Boat Power Design with MPPT System.” Presented at the 2019 8th International Conference on Modeling Simulation and Applied Optimization (ICMSAO). IEEE.
  • [13] A. A. Saleh, R. K. Antar, & H. Al-Badrani, (2021). “Design of New Structure of Multilevel Inverter Based on Modified Absolute Sinusoidal PWM Technique.” International Journal of Power Electronics and Drive System (IJPEDS), 12(4), 2314-2321. DOI: 10.11591/ijpeds.v12.i4.pp2314-2321.
  • [14] R. K. Antar, E. H. Sadiq, & A. A. Saleh, (2020). “Asymmetrical Multilevel Inverter with Modified Absolute Sinusoidal PWM Technique for Sensorless Control of Induction Motor.” Presented at the 1st International Multi-Disciplinary Conference Theme: Sustainable Development and Smart Planning, IMDC-SDSP2020. Cyperspace, EAI. DOI: 10.4108/eai.28-6-2020.2297934
  • [15] R. K. Antar, T. A. Hussien, & A. A. Hamdon, (2022). “Design and Implementation of Reduced Number of Switches for New Multilevel Inverter Topology without Zero-Level State.” International Journal of Power Electronics and Drive System, 13(1), 401-410. DOI: 10.11591/ijpeds.v13.i1.
  • [16] D. W. Hart, (2014). Power Electronics Handbook. Pearson Education, Inc, McGraw Hill.
  • [17] V. Yaramasu, et al. (2017). “PMSG‐based wind energy conversion systems: survey on power converters and controls.” IET Electric Power Applications, 11(6), 956-968.
  • [18] C. H. Tran, F. Nollet, N. Essounbouli, & A. Hamzaoui, (2018). “Maximum power point tracking techniques for wind energy systems using three levels boost converter.” Presented at the 7th International Conference on Clean and Green Energy-ICCGE 2018.
  • [19] S. Rathore, M. K. Kirar, & S. K. Bhardwaj, (2015). “SIMULATION OF CASCADED H-BRIDGE MULTILEVEL INVERTER USING PD, POD, APOD TECHNIQUES.” Electrical & Computer Engineering: An International Journal (ECIJ), 4(3), September 2015.
  • [20] IEEE Standard for Harmonic Control in Electric Power Systems (2022). IEEE Std 519-2022 (Revision of IEEE Std 519-2014), pp. 8-05, 2022.

Voltage Level Managements of Multilevel Inverter Based on Renewable Energy Sources and Environment Conditions

Yıl 2025, Cilt: 13 Sayı: 1, 404 - 416, 24.03.2025
https://doi.org/10.29109/gujsc.1503575

Öz

Due to its advantages in applications requiring high voltage, high power, and low harmonics, multilevel inverter (MLI) technology has attracted a lot of attention. Using multilevel inverter technology, one can expect to obtain output voltage and current waveforms of the highest quality. However, as the number of levels increases, so does the numbers of the switching devices and energy sources. This issue can be solved by creating the MLI using hybrid technology. This paper is devoted to designing a hybrid multilevel inverter with fewer switching elements and a modulation technique for multiple energy sources. In multilevel inverters, the most essential requirements are the evolution of the hybrid MLI model and a decrease of harmonic components in the output of the inverter voltage/current. This study proposes a system composed of four distinct renewable energy sources besides a backup battery. Three solar PV panel systems with voltages of (8:4:2)E are recommended, along with a wind turbine of 2E, a battery source of 1E, and a battery source of 1E. The sum of all DC sources was (8:4:2:2:1:1)E to generate a 37-level voltage on the output if all renewable energies are available. The system can also work to generate 35-level (without using batteries). Also, it can generate 33-level (without wind), 9-level (without PV systems), and 3-level (just using one of the battery systems). So, the system is flexible to generate different output levels according to what renewable energy sources are available. The system was created using the MATLAB software. The results proved that the designed hybrid multilevel has good THD responses for each level of MLI regarding the IEEE Standard of 519-2022.

Kaynakça

  • [1] R. K. Antar, “Multilevel Inverter with Unequal and Selected DC Voltage Sources Using Modified Absolute Sinusoidal PWM Technique,” 1st International Scientific Conference of Engineering Sciences - 3rd Scientific Conference of Engineering Science (ISCES), IEEE, pp. 62-67, January 2018.
  • [2] R. Al Badwawi, M. Abusara, and T. Mallick, “A Review of Hybrid Solar PV and Wind Energy System,” Smart Science, vol. 3, no. 3, pp. 127-138, 2015.
  • [3] M. Sami and M. A. Mallick, “Cascaded H-Bridge 11-level Multilevel Inverter,” International Journal of Engineering Research & Technology (IJERT), 2021.
  • [4] A. Bughneda, M. Salem, A. Richelli, D. Ishak, and S. Alatai, “Review of Multilevel Inverters for PV Energy System Applications,” Energies, MDPI, 2021.
  • [5] D. Ganesh and G. Chandra Sekhar, “Simulation of Three Phase Nine-level Inverter for Interfacing with Solar PV system,” International Journal of Innovative Research in Science, Engineering and Technology, 2017.
  • [6] A. N. and A. K. I., “Multi-input Inverter for Hybrid Wind-Photovoltaic Standalone System,” Proceedings of the Second International Conference on Computing Methodologies and Communication (ICCMC 2018).
  • [7] J. Sathik, S. H. E. Abdel Aleem, R. Shalchi Alishah, D. Almakhles, and K. Bertilsson, “A Multilevel Inverter Topology Using Diode Half-Bridge Circuit with Reduced Power Component,” Energies, MDPI, 2021.
  • [8] R. S. Jadhav and S. B. Patil, “Design and Implementation of PV-Wind Battery Hybrid System for off-grid and on-grid,” Proceedings of the Fourth International Conference on Inventive Systems and Control (ICISC 2020).
  • [9] M. Sandhu and T. Thakur, “Reduction of Harmonics In a Hybrid PV/Wind Microgrid Using a Modified Multilevel Inverter,” IEEE Electrical Power Energy Conference (EPEC), 2019.
  • [10] S. K. Gupta, K. Rathore, & P. Bansal, (2018). “Design and Analysis of a New 31-Level Asymmetrical Multilevel Inverter Topology with Different PWM Techniques.” Presented at the 2018 3rd International Innovative Applications of Computational Intelligence on Power, Energy and Controls with their Impact on Humanity (CIPECH). IEEE.
  • [11] Y. Kumar, M. Goyal, & R. Mishra, (2020). “Modified PV based hybrid multilevel inverters using multicarrier PWM strategy.” Presented at the 2020 4th international conference on electronics, communication and aerospace technology (ICECA). IEEE.
  • [12] W. Obaid, A. K. Hamid, & C. Ghenai, (2019). “Wind-Fuel-Cell-Solar Hybrid Electric Boat Power Design with MPPT System.” Presented at the 2019 8th International Conference on Modeling Simulation and Applied Optimization (ICMSAO). IEEE.
  • [13] A. A. Saleh, R. K. Antar, & H. Al-Badrani, (2021). “Design of New Structure of Multilevel Inverter Based on Modified Absolute Sinusoidal PWM Technique.” International Journal of Power Electronics and Drive System (IJPEDS), 12(4), 2314-2321. DOI: 10.11591/ijpeds.v12.i4.pp2314-2321.
  • [14] R. K. Antar, E. H. Sadiq, & A. A. Saleh, (2020). “Asymmetrical Multilevel Inverter with Modified Absolute Sinusoidal PWM Technique for Sensorless Control of Induction Motor.” Presented at the 1st International Multi-Disciplinary Conference Theme: Sustainable Development and Smart Planning, IMDC-SDSP2020. Cyperspace, EAI. DOI: 10.4108/eai.28-6-2020.2297934
  • [15] R. K. Antar, T. A. Hussien, & A. A. Hamdon, (2022). “Design and Implementation of Reduced Number of Switches for New Multilevel Inverter Topology without Zero-Level State.” International Journal of Power Electronics and Drive System, 13(1), 401-410. DOI: 10.11591/ijpeds.v13.i1.
  • [16] D. W. Hart, (2014). Power Electronics Handbook. Pearson Education, Inc, McGraw Hill.
  • [17] V. Yaramasu, et al. (2017). “PMSG‐based wind energy conversion systems: survey on power converters and controls.” IET Electric Power Applications, 11(6), 956-968.
  • [18] C. H. Tran, F. Nollet, N. Essounbouli, & A. Hamzaoui, (2018). “Maximum power point tracking techniques for wind energy systems using three levels boost converter.” Presented at the 7th International Conference on Clean and Green Energy-ICCGE 2018.
  • [19] S. Rathore, M. K. Kirar, & S. K. Bhardwaj, (2015). “SIMULATION OF CASCADED H-BRIDGE MULTILEVEL INVERTER USING PD, POD, APOD TECHNIQUES.” Electrical & Computer Engineering: An International Journal (ECIJ), 4(3), September 2015.
  • [20] IEEE Standard for Harmonic Control in Electric Power Systems (2022). IEEE Std 519-2022 (Revision of IEEE Std 519-2014), pp. 8-05, 2022.
Toplam 20 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Elektrik Devreleri ve Sistemleri
Bölüm Tasarım ve Teknoloji
Yazarlar

Ahmed Hamad 0009-0008-3924-4789

Ersagun Kürşat Yaylacı 0000-0003-0358-5617

Assist. Prof. Dr. Rakan Khalil Antar 0000-0001-8203-8579

Erken Görünüm Tarihi 19 Mart 2025
Yayımlanma Tarihi 24 Mart 2025
Gönderilme Tarihi 23 Haziran 2024
Kabul Tarihi 10 Eylül 2024
Yayımlandığı Sayı Yıl 2025 Cilt: 13 Sayı: 1

Kaynak Göster

APA Hamad, A., Yaylacı, E. K., & Khalil Antar, A. P. D. R. (2025). Voltage Level Managements of Multilevel Inverter Based on Renewable Energy Sources and Environment Conditions. Gazi Üniversitesi Fen Bilimleri Dergisi Part C: Tasarım Ve Teknoloji, 13(1), 404-416. https://doi.org/10.29109/gujsc.1503575

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