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Littérature scientifique sur le sujet « Interleaved-Boost Converter (IBC) »
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Articles de revues sur le sujet "Interleaved-Boost Converter (IBC)"
Karthikeyan, V., Venkatesan Jamuna et D. Rajalakshmi. « Interleaved Boost Converter for Photovoltaic Energy Generation ». Applied Mechanics and Materials 622 (août 2014) : 97–103. http://dx.doi.org/10.4028/www.scientific.net/amm.622.97.
Texte intégralRamaprabha, R., K. Balaji, SB Raj et VD Logeshwaran. « Comparison of Interleaved Boost Converter Configurations for Solar Photovoltaic System Interface ». Journal of Engineering Research [TJER] 10, no 2 (1 décembre 2013) : 87. http://dx.doi.org/10.24200/tjer.vol10iss2pp87-98.
Texte intégralFaraj, Karrar Saad, et Jasim F. Hussein. « Analysis and Comparison of DC-DC Boost Converter and Interleaved DC-DC Boost Converter ». Engineering and Technology Journal 38, no 5A (25 mai 2020) : 622–35. http://dx.doi.org/10.30684/etj.v38i5a.291.
Texte intégralSamad, Muhammad Adnan, Usmonov Shukurillo Yulbarsovich, Sultonov Ruzimatjon Anvarjon Ugli et Saima Siddiqui. « Advanced control and optimization strategies for a 2-phase interleaved boost converter ». Indonesian Journal of Electrical Engineering and Computer Science 36, no 3 (1 décembre 2024) : 1421. http://dx.doi.org/10.11591/ijeecs.v36.i3.pp1421-1429.
Texte intégralAzri, Maaspaliza, Nur Hidayah Abu Khanipah, Zulkifilie Ibrahim et Nasrudin Abd. Rahim. « Fuel Cell Emulator with MPPT Technique and Boost Converter ». International Journal of Power Electronics and Drive Systems (IJPEDS) 8, no 4 (1 décembre 2017) : 1852. http://dx.doi.org/10.11591/ijpeds.v8.i4.pp1852-1862.
Texte intégralKumar, C. Prasanna, et N. Venugopal. « Performance and Stability Analysis of Series-Cascaded, High-Gain, Interleaved Boost Converter for Photovoltaic Applications ». Power Electronics and Drives 3, no 1 (1 juin 2018) : 85–97. http://dx.doi.org/10.2478/pead-2018-0022.
Texte intégralFarh, Hassan, Mohd Othman, Ali Eltamaly et M. Al-Saud. « Maximum Power Extraction from a Partially Shaded PV System Using an Interleaved Boost Converter ». Energies 11, no 10 (24 septembre 2018) : 2543. http://dx.doi.org/10.3390/en11102543.
Texte intégralSampath, Suresh, Zahira Rahiman, Sharmeela Chenniappan, Elango Sundaram, Umashankar Subramaniam et Sanjeevikumar Padmanaban. « Efficient Multi-Phase Converter for E-Mobility ». World Electric Vehicle Journal 13, no 4 (13 avril 2022) : 67. http://dx.doi.org/10.3390/wevj13040067.
Texte intégralWasiatno, Juan Marco Alexander, et Leonardus Heru Pratomo. « Design of Two Phase DC-AC Interleaved Boost Inverter with Voltage Control System using PI Controller ». Jurnal Elektronika dan Telekomunikasi 24, no 2 (31 décembre 2024) : 88. https://doi.org/10.55981/jet.652.
Texte intégralRexy, A. Inba, et R. Seyezhai. « Simulation Analysis and Implementation of Two - Phase Interleaved Boost Converter with Ripple Steering for Power Factor Correction ». Advanced Materials Research 984-985 (juillet 2014) : 1046–56. http://dx.doi.org/10.4028/www.scientific.net/amr.984-985.1046.
Texte intégralThèses sur le sujet "Interleaved-Boost Converter (IBC)"
Benzine, Meryem. « Contrôle tolérant aux défauts de circuit-ouvert et de court-circuit pour un hacheur élévateur à phases parallèles et à inductances couplées ». Electronic Thesis or Diss., Bourgogne Franche-Comté, 2024. http://www.theses.fr/2024UBFCA021.
Texte intégralFuel cell electric vehicles (FCEVs) are seen as potential solutions and represent one of the most recent advances in the field of transport to reduce CO2 emissions. As the fuel cell is the main power source, a boost converter is required to increase its low voltage and adapt it to the DC bus voltage. The four-phase interleaved DC/DC boost converter with inverse cyclic cascade coupled inductors (4IBC-IC) has been confirmed as the most suitable architecture for fuel cell electric vehicles. Not only does it improve efficiency and reduce the converter’s size, but it also helps to extend the fuel cell's lifespan by reducing input current ripple. Since semiconductors are very fragile components, they can fail and degrade fuel cell system performance. Even if the converter architecture is fault-tolerant, it requires a fault-tolerant controller to ensure optimal operation in the event of disturbances or faults. In this context, a signal-based fault-tolerant control is proposed in this thesis to diagnose both short-circuit fault (SCF) and open-circuit-fault (OCF). Once the fault is detected, it is isolated by the control unit and the converter architecture is then reconfigured according to the fault location to ensure optimal operation. PI correctors are implemented to ensure the regulation of the output voltage and phase currents. Due to the unavailability of coupled inductors, this approach has been validated experimentally on a classical four-phase interleaved boost converter (4IBC) test bench using the MicroLabBox DS1202 with its processor and internal FPGA board to implement the fault-tolerant control.Simulation, on Matlab/Simulink and virtual hardware simulation (VHIL), and experimental results validate the robustness of the proposed fault-tolerant control. It is easy to implement and can quickly identify faults without the need for additional sensors. It operates efficiently without requiring high sampling rates, addressing one of the key limitations of signal-based methods. Given its simplicity of implementation, the proposed method can be easily integrated into existing controls and can even be extended to other multilevel converter topologies.To improve the robustness of the control unit, a novel fault-tolerant robust control approach has been proposed by replacing the traditional PI controllers with flatness-based and sliding mode controllers while incorporating an observer. The observer plays a key role in accurately estimating the input voltage and load current, ultimately ensuring high robustness against disturbances. A judicious optimization of the number of sensors is thus achieved, minimizing the cost and the probability of measurement errors. Simulation results in the Matlab/Simulink environment confirm the effectiveness of this approach. This significant contribution strengthens the reliability and robustness of DC/DC converters with coupled inductors and consolidates the position of the FCEVs as a promising sustainable mobility solution
Actes de conférences sur le sujet "Interleaved-Boost Converter (IBC)"
Diab, Noher M., Ibrahim Abdelsalam et Mostafa S. Hamad. « OFF-Board EV Charger Based on Interleaved AC-DC Boost Converter ». Dans 2024 International Telecommunications Conference (ITC-Egypt), 338–42. IEEE, 2024. http://dx.doi.org/10.1109/itc-egypt61547.2024.10620521.
Texte intégralMarothiya, Anirudha S., Pradyumn Chaturvedi et M. A. Chaudhari. « Interleaved Boost Converter (IBC) based fast EV charging system : Design and Simulation ». Dans 2023 IEEE 3rd International Conference on Smart Technologies for Power, Energy and Control (STPEC). IEEE, 2023. http://dx.doi.org/10.1109/stpec59253.2023.10431011.
Texte intégralKrishna Varma, Kshatriya Vamshi, A. Ramkumar et K. Rajesh. « Grid Integrated Eco-Friendly Pumping System for Active PFC Using Interleaved Boost Converter (IBC) Topology ». Dans 2019 IEEE International Conference on Clean Energy and Energy Efficient Electronics Circuit for Sustainable Development (INCCES). IEEE, 2019. http://dx.doi.org/10.1109/incces47820.2019.9167711.
Texte intégralNithin, V., K. Vigneshwar, N. Siva Sumanth, P. Siva Priya et R. Seyezhai. « Performance evaluation of bridgeless and phase shifted semi bridgeless interleaved boost converters (IBCS) for power factor correction ». Dans IET Chennai Fourth International Conference on Sustainable Energy and Intelligent Systems (SEISCON 2013). Institution of Engineering and Technology, 2013. http://dx.doi.org/10.1049/ic.2013.0303.
Texte intégralSubramanian, N., P. Prasanth, R. Srinivasan, R. Seyezhai et R. R. Subesh. « A comparative study of conventional, coupled inductor and RCN based interleaved boost converter for photo-voltaic applications ». Dans IET Chennai Fourth International Conference on Sustainable Energy and Intelligent Systems (SEISCON 2013). Institution of Engineering and Technology, 2013. http://dx.doi.org/10.1049/ic.2013.0296.
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