Academic literature on the topic 'Battery Charge Controller'

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Journal articles on the topic "Battery Charge Controller"

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Rahim, N. A., S. Mekhilef, E. L. Chan, and H. W. Ping. "Fuzzy-Controlled Battery Charger State-of-Charge Controller." International Journal of Modelling and Simulation 26, no. 2 (2006): 106–11. http://dx.doi.org/10.1080/02286203.2006.11442357.

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Yadasu, Shyam, Vinay Kumar Awaar, Vatsala Rani Jetti, and Mohsen Eskandari. "Sensor Fusion-Based Pulsed Controller for Low Power Solar-Charged Batteries with Experimental Tests: NiMH Battery as a Case Study." Batteries 10, no. 9 (2024): 335. http://dx.doi.org/10.3390/batteries10090335.

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Solar energy is considered the major source of clean and ubiquitous renewable energy available on various scales in electric grids. In addition, solar energy is harnessed in various electronic devices to charge the batteries and power electronic equipment. Due to its ubiquitous nature, the corresponding market for solar-charged small-scale batteries is growing fast. The most important part to make the technology feasible is a portable battery charger and the associated controllers to automate battery charging. The charger should consider the case of charging to be convenient for the user and m
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Win, Zaw Myo Htet, Lwin Myo, and Htet Nay Aung Lwan. "Construction of Wind-Solar Hybrid Charge Controller." Bago University Research Journal Vol.9, No.1, no. 2019 (2019): 157–63. https://doi.org/10.5281/zenodo.3920369.

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Wind-solar hybrid controller is constructed by using an Arduino Uno. These controllers used high ampere dc relays, which use switching between dump load and battery. The 4-lines LCD is used to display the battery voltage, charging current and operation mode of the controller circuit. LM 385 dual comparator Op-Amp IC is used to sense the charging current and battery voltage. The A/D module of an Arduino Uno is used to convert the LM385 outputs into digital form which are used as the reference values in the program. When the battery voltage reaches about 14.5 volt, the output is switched to a Du
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Hina N. Kadeval, V. K. Patel. "Design and Development of MPPT Solar Charge Controller for Efficiency Enhancement in Solar PV System." Journal of Electrical Systems 20, no. 3 (2024): 5462–68. http://dx.doi.org/10.52783/jes.6431.

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Maximum power point tracking charge controller simulation is done in in proteus 8 professional software and validate using development of hardware model of MPPT solar charge controller for battery. Solar panel does not generate enough voltage all time.Panel can generate 12V to 21V according to solar radiation and environmental condition. For charging of 12V battery minimum required voltage is 14.6V. So, the Maximum power point tracking controller will give extra voltage into usable current, so battery can charge in short period.Development of MPPT Solar Charge Controller is done using ardunion
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Tan, Rodney H. G., Chee Kang Er, and Sunil G. Solanki. "Modeling of Photovoltaic MPPT Lead Acid Battery Charge Controller for Standalone System Applications." E3S Web of Conferences 182 (2020): 03005. http://dx.doi.org/10.1051/e3sconf/202018203005.

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This paper presents the circuitry modeling of the solar photovoltaic MPPT lead-acid battery charge controller for the standalone system in MATLAB/Simulink environment. A buck topology is utilized as a DC-DC converter for the charge controller implementation. The maximum power of the photovoltaic panel is tracked by the Perturb and Observe MPPT algorithm. The battery charge controller charges the lead-acid battery using a three-stage charging strategy. The three charging stages include the MPPT bulk charge, constant voltage absorption charge, and float charge stage. The performance analysis of
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Sina, Semeskandeh, Hojjat Mehrdad, and Hosseini Abardeh Mohamad. "Design of a photovoltaic MPPT charge controller using DC-DC ZETA converter with a modified three-stage charging method." International Journal of Power Electronics and Drive Systems (IJPEDS) 13, no. 3 (2022): 1887–94. https://doi.org/10.11591/ijpeds.v13.i3.pp1887-1894.

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Nowadays, one of the primary kinds of renewable energies is photovoltaic (PV) systems. In standalone PV systems, the battery charge controller plays an important role in the system efficiency. In the maximum power point tracking (MPPT) charge controller, due to adjusting the voltage level and tracking the maximum power, DC-DC converter and MPPT algorithm are used. ZETA converter, as a DC-DC converter, offers a low output ripple. In the proposed MPPT charge controller, a DC-DC ZETA converter accompanied by a perturb and observe (P&O) algorithm will be used for tracking maximum power. Furthe
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Hina N. Kadeval and V. K. Patel. "Maximum Power Point Tracking Charge Controller Using Modified Perturb and Observe Algorithm for Lead Acid Battery." Journal of Agricultural Engineering (India) 60, no. 3 (2023): 320–28. http://dx.doi.org/10.52151/jae2023603.1817.

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A study was undertaken on development of a modified perturb and observe algorithm for maximum power point tracking (MPPT) charge controller. This MPPT algorithm was developed in Matlab/Simulink environment, using three-state charging method for improved battery charging with higher efficiency. A buck topology was utilised as a DC-DC converter for charge controller implementation. The maximum power of the photovoltaic panel was tracked by a modified perturb and observe algorithm. The battery charge controller charged a lead-acid battery using a three- stage charging strategy including the bulk
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Semeskandeh, Sina, Mehrdad Hojjat, and Mohamad Hosseini Abardeh. "Design of a photovoltaic mppt charge controller using DC-DC zeta converter with a modified three-stage charging method." International Journal of Power Electronics and Drive Systems (IJPEDS) 13, no. 3 (2022): 1887. http://dx.doi.org/10.11591/ijpeds.v13.i3.pp1887-1894.

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Nowadays, one of the primary kinds of renewable energies is photovoltaic (PV) systems. In standalone PV systems, the battery charge controller plays an important role in the system efficiency. In the maximum power point tracking (MPPT) charge controller, due to adjusting the voltage level and tracking the maximum power, DC-DC converter and MPPT algorithm are used. ZETA converter, as a DC-DC converter, offers a low output ripple. In the proposed MPPT charge controller, a DC-DC ZETA converter accompanied by a P&O (perturb and observe) algorithm will be used for tracking maximum power. Fu
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Jurnal, Redaksi Tim. "IMPLEMENTASI LOGIKA FUZZY UNTUK SISTEM OTOMATISASI PENGATURAN PENGISIAN BATERE PEMBANGKIT LISTRIK TENAGA SURYA." Energi & Kelistrikan 9, no. 2 (2018): 111–19. http://dx.doi.org/10.33322/energi.v9i2.41.

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Solar power plants (PLTS) as power plants that use solar rays to generate electrical energy have a big role in reducing the burden of reducing CO2 emissions. Electrical energy generated by solar panels in the form of direct current (DC / direct current) low voltage. This electrical energy will be collected and stored in a battery (accumulator / battery) through a battery charging controller or so-called solar charge controller that serves as a controller charging process so that the voltage and current are filled to the battery does not exceed the ability batteries or overcharge. This research
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Liu, Xing Qiao, and Yan Chen. "Research on Intelligent Controller of Solar Lighting System." Applied Mechanics and Materials 220-223 (November 2012): 1138–41. http://dx.doi.org/10.4028/www.scientific.net/amm.220-223.1138.

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After discussing the charging and discharging characteristics of valve regulated lead acid(VRLA) battery, we described the working principle of UC3906. Then designed the controller of 12V battery charge circuit, 12V battery discharge protection circuit and lamp detection control circuit. This controller achieved automatic switch of lighting system, it could efficiently charge the battery and avoid over-charge or over-discharge. The result showed that this controller extend the life of the battery.
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Dissertations / Theses on the topic "Battery Charge Controller"

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Pauzi, Muhamad Nurfifi. "Re-commissioning of a battery charge controller test setup." Thesis, Pauzi, Muhamad Nurfifi (2018) Re-commissioning of a battery charge controller test setup. Honours thesis, Murdoch University, 2018. https://researchrepository.murdoch.edu.au/id/eprint/41916/.

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The School of Engineering and Technology at Murdoch University offers a major in Instrumentation and Control Engineering. Students who are enrolled in this major have an opportunity to choose a second major in Renewable Energy System Engineering. This second major helps students to expand their knowledge in Renewable Energy by conducting a research project in final year. Students are able to develop skill and knowledge in using the LabView, battery charge controller, solar array simulator, load bank, and battery simulator. The main goal of this thesis is to re-commission a battery charge c
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Vidal, Lorbada Ricardo. "Design and implementation of a charge controller with buck converter topology for a Li-ion battery using the component LTC4015." Thesis, Högskolan Dalarna, Energiteknik, 2016. http://urn.kb.se/resolve?urn=urn:nbn:se:du-24466.

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This report presents the process of design and implementation of a battery charger for a Li-ion battery. The development of this battery charger includes the component from Linear Technology LTC4015. This component integrates the functions of a battery charger configured as a buck (step-down) converter. This device must be integrated in a Printed Circuit Board with a specific design. Also, it must be configured using a microcontroller named Raspberry Pi, which also performs the measurements. The method of design is divided in two parts. One is focused on developing the printed circuit board, w
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Persson, Björn. "Design and Implementation of a Supervisory Controller for PV and Storage." Thesis, Högskolan Dalarna, Energiteknik, 2018. http://urn.kb.se/resolve?urn=urn:nbn:se:du-28057.

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Battery energy storage systems are a key factor for enabling a continuous increase of the fraction of photovoltaics in the Swedish electricity grid. One big challenge is to utilise all potential services of such a storage system. The aim of this study was to improve the supervisory controller for an existing battery storage and photovoltaic solution marketed by the Swedish company Ferroamp AB. This has been done by developing a combined peak reduction and time-of-use bill management algorithm, together with a simulation and evaluation software for optimisation of algorithm parameters. The algo
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ElSherif, Khaled. "Solar Powered Smart Street Post." Thesis, Högskolan Dalarna, Energiteknik, 2018. http://urn.kb.se/resolve?urn=urn:nbn:se:du-28184.

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This thesis work aimed to develop solar Photovoltaic (PV) powered smart street post. The post was set to serve on highways for wild animals’ detection and warn vehicles of possible crossings. The main aim was to design reliable standalone PV system via PVSyst software and experimenting four different PV technologies including a bifacial module under. Another aim was to select and develop the hardware and software terms of the smart street pot. Radar sensor and analog to digital (A/D) data acquisition (DAQ) card were set to be used for the motion detection. RF wireless communication module was
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Darebný, Tomáš. "Návrh fotovoltaického systému rodinného domu." Master's thesis, Vysoké učení technické v Brně. Fakulta elektrotechniky a komunikačních technologií, 2017. http://www.nusl.cz/ntk/nusl-319625.

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Basic knowledge of photovoltaic energy transformation, devices and materials, used in photovoltaic are summarized in this master's thesis. The main goal of this thesis is orientation in the photovoltaic systems used these days and explain advantages and disadvantages of these systems during the design phase.
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朱劍超 and Kim-chiu Chu. "Development of intelligent battery charger and controller for electricvehicle." Thesis, The University of Hong Kong (Pokfulam, Hong Kong), 1989. http://hub.hku.hk/bib/B31209178.

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Chu, Kim-chiu. "Development of intelligent battery charger and controller for electric vehicle /." [Hong Kong : University of Hong Kong], 1989. http://sunzi.lib.hku.hk/hkuto/record.jsp?B12599074.

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Powell, Evelyn. "The Process of Identity Change From Entitled Controller to Batterer." TopSCHOLAR®, 1998. http://digitalcommons.wku.edu/theses/273.

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The primary purpose of this research was to investigate any catalysts to changes in self-concept that may have occurred among thirteen men who had been labeled as batterers by the courts and who were about to graduate from the Project to End Abuse through Counseling and Education (PEACE), a court-mandated batterers' intervention program, in Nashville, Tennessee. It is deemed necessary for a batterer to first recognize himself as such before he is able to stop battering. The second purpose of this research was to document the men's attitudes about PEACE and how it affected them. Within the fram
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Adkins, William Scott. "Automatic PMG Controller for Small Applications." Wright State University / OhioLINK, 2015. http://rave.ohiolink.edu/etdc/view?acc_num=wright1453458312.

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Kistenmacher, Barbara Rachel. "Motivational interviewing as a mechanism for change in men who batter : a randomized controlled trial /." view abstract or download file of text, 2000. http://wwwlib.umi.com/cr/uoregon/fullcit?p9987427.

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Thesis (Ph. D.)--University of Oregon, 2000.<br>Typescript. Includes vita and abstract. Includes bibliographical references (leaves 84-88). Also available for download via the World Wide Web; free to University of Oregon users.
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Books on the topic "Battery Charge Controller"

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MATLAB Model of an Optimized Battery Charge Controller. Self Published, 2022.

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Wolters-Broder, Lisa. MCP73213 Dual-Cell Li-Ion / Li-Polymer Battery Charge Management Controller with Input Overvoltage Protection. Microchip Technology Incorporated, 2018.

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Kennelly, Spencer. MCP73213 Dual-Cell Li-Ion/Li-Polymer Battery Charge Management Controller with Input Overvoltage Protection. Microchip Technology Incorporated, 2014.

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Anderson, Julie. MCP73871-Stand-Alone System Load Sharing and Li-Ion /Li-Polymer Battery Charge Management Controller. Microchip Technology Incorporated, 2018.

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Kirsch, Susan. MCP73837/8 - Advanced Stand-Alone Li-Ion/Li-Polymer Battery Charge Management Controller with Autonomous AC Adapter or USB Port Source Selection. Microchip Technology Incorporated, 2015.

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EHIEM-IWUJI, Gloria. Design and construction of a thyristor controlled automatic battery Charger. Lulu Press, Inc., 2010.

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Kennelly, Spencer. MCP73830/l Single-Cell Li-Ion/Li-Polymer Battery Charge Management Controllers in 2x2 TDFN. Microchip Technology Incorporated, 2014.

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Book chapters on the topic "Battery Charge Controller"

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Nazemian, Amin, Evangelos Boulougouris, and Myo Zin Aung. "Simulation of Hybrid Fuel Cell-Battery Propulsion System Scrutinizing Multi-scheme Energy Management for a CTV Boat." In Lecture Notes in Mobility. Springer Nature Switzerland, 2025. https://doi.org/10.1007/978-3-031-89444-2_62.

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Abstract This paper proposes a model of a hybrid fuel cell-battery propulsion system for a Crew Transfer Vessel (CTV). A multi-scheme energy management strategy is also applied to the EMS block to optimize energy flow. A fuel cell-battery hybrid system was developed by integrating PEM fuel cells with Li-ion batteries to provide electricity to the propeller propulsion system, and hotel load. Accordingly, a hybrid battery/fuel cell propulsion system with the capability of both charging the battery at both stations and bunkering the fuel tanks will be proposed. During cruising, docking, stopping,
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Hussain, Alina, and Manisha. "An Intelligent MPPT Technique for a Three-Stage Battery Charge Controller for Standalone System." In Lecture Notes in Electrical Engineering. Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-99-0969-8_34.

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Singh, Sarthak, Tanishq Sagar, and Gitanjali Mehta. "A Study Photovoltaic Inverter System with MPPT and Battery Charge–Discharge Controller for Standalone Application." In Lecture Notes in Electrical Engineering. Springer Nature Singapore, 2025. https://doi.org/10.1007/978-981-96-0089-2_7.

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Kumar, Pankaj, Amanjot Kaur, and Jasmeet Kaur. "Battery charge controllers in wind turbine systems." In Energy Management Systems for Microgrids with Wind, PV and Battery Storage. The Institution of Engineering and Technology, 2025. https://doi.org/10.1049/pbpo270e_ch9.

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Das, Shreya, Avishek Munsi, Piyali Pal, Dipak Kumar Mandal, and Sumana Chowdhuri. "Solar PV Battery Charger Using MPPT-Based Controller." In Lecture Notes in Electrical Engineering. Springer Singapore, 2019. http://dx.doi.org/10.1007/978-981-32-9346-5_14.

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Sujitha, N., and S. Krithiga. "Fuzzy Logic Controller Based Plug-In EV Battery Charger." In Intelligent Paradigms for Smart Grid and Renewable Energy Systems. Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-15-9968-2_8.

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Podder, Tina, Arnob Konwar, Shwarif Hussain, Pranjal Haloi, Ganesh Roy, and Ranjay Das. "MPPT Controlled Rechargeable Battery Charger for Solar Cells in Robotics Applications." In Algorithms for Intelligent Systems. Springer Nature Singapore, 2025. https://doi.org/10.1007/978-981-96-4093-5_26.

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Jaumann, Florian, Tobias Schuster, Michael Unterreiner, Torben Gräber, Johannes Edelmann, and Manfred Plöchl. "Powerslide Control with Deep Reinforcement Learning." In Lecture Notes in Mechanical Engineering. Springer Nature Switzerland, 2024. http://dx.doi.org/10.1007/978-3-031-70392-8_121.

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AbstractControlling a vehicle’s powerslide motion in the presence of a human driver is a challenging control task, but one that may have a significant impact on vehicle safety, for example, during rapid evasive manoeuvres. Reinforcement Learning, a data-driven optimal control strategy, has gained increasing attention in recent years, demonstrating its effectiveness in successfully controlling various nonlinear systems. In this work, a novel powerslide controller is designed for an all-wheel drive battery electric vehicle with individually driven front and rear axles and a human driver in close
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Chen, Yiming, Ruichang Qiu, and Yonggang Huang. "Design of PI Controller in the Charging Current Control System of the Battery Charger." In Proceedings of the 2015 International Conference on Electrical and Information Technologies for Rail Transportation. Springer Berlin Heidelberg, 2016. http://dx.doi.org/10.1007/978-3-662-49367-0_23.

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Ramprasath, S., R. Abarna, G. Anjuka, K. Deva Priya, S. Iswarya, and C. Krishnakumar. "Performance Analysis of Slope-Compensated Current Controlled Universal PV Battery Charger for Electric Vehicle Applications." In Lecture Notes in Electrical Engineering. Springer Singapore, 2021. http://dx.doi.org/10.1007/978-981-16-4943-1_38.

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Conference papers on the topic "Battery Charge Controller"

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Schnabel, Alec, and Ben McGilton. "A Comparison of Battery Charge Controller Technologies for Wave Energy Converters." In 2024 IEEE Energy Conversion Congress and Exposition (ECCE). IEEE, 2024. https://doi.org/10.1109/ecce55643.2024.10861497.

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Joshi, Tripuresh, Madan Mohan Sati, Punit Kumar, Akhilesh Singh, Ashish Gupta, and Shweta Goyal. "Implementation of Fuzzy Logic Controller for the Charge Controlling of Electric Vehicle Battery." In 2024 Asia Pacific Conference on Innovation in Technology (APCIT). IEEE, 2024. http://dx.doi.org/10.1109/apcit62007.2024.10673595.

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Anudeep, Kurakula, Alivelu M. Parimi, Sandip S. Deshmukh, and Parikshit Sahatiya. "Design of a Controller for State of Charge Regulation in Battery-Supercapacitor Systems: CC-CV Charging with Modified Passive Topology." In 2025 International Conference on Intelligent Control, Computing and Communications (IC3). IEEE, 2025. https://doi.org/10.1109/ic363308.2025.10956600.

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Laksono, Arief Budi, Wahyu Mulyo Utomo, Ahmad Isa Nur Atikah, Afarulrazi Abu Bakar, Affan Bachri, and Widjanarko. "Battery Charger with Bridgeless Power Factor Correction using PID-ANN Controller." In 2024 IEEE 2nd International Conference on Electrical Engineering, Computer and Information Technology (ICEECIT). IEEE, 2024. https://doi.org/10.1109/iceecit63698.2024.10859912.

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Raghavendra, Naik K., and K. Padmavathi. "Solar Charge Controller for Lithium-Ion Battery." In 2018 IEEE International Conference on Power Electronics, Drives and Energy Systems (PEDES). IEEE, 2018. http://dx.doi.org/10.1109/pedes.2018.8707743.

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Khan, Md Imran, M. Raihanul Islam, Md Zahangir Mozumder, and K. M. Rahman. "Photovoltaic maximum power point tracking battery charge controller." In 2009 International Conference on the Developments in Renewable Energy Technology (ICDRET 2009). IEEE, 2009. http://dx.doi.org/10.1109/icdret.2009.5454219.

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Deepika, M., P. Karthikeyan, A. V. Keerthana, et al. "MPPT-Based Charge Controller for Battery Fast Charging." In 2023 9th International Conference on Advanced Computing and Communication Systems (ICACCS). IEEE, 2023. http://dx.doi.org/10.1109/icaccs57279.2023.10112852.

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John, Jacob, Anna Merine George, and Ciji Pearl Kurian. "Indoor PV system for IOT Applications with Battery Charge Microcontroller." In 2022 International Conference on Intelligent Controller and Computing for Smart Power (ICICCSP). IEEE, 2022. http://dx.doi.org/10.1109/iciccsp53532.2022.9862394.

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Mane, Priyanka, Vilas Bugade, and Priyanka Kulkarni. "Battery charge controller for Islanded micro grid network topology." In INTERNATIONAL CONFERENCE ON SMART MATERIALS AND STRUCTURES, ICSMS-2022. AIP Publishing, 2023. http://dx.doi.org/10.1063/5.0129599.

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Ortega-Sanchez, Cesar, Jaime Orozco-Valera, Jojutla Pacheco-Arteaga, and Alejandro Rivera-Garci´a. "Monitoring and Charge-Control of Lead-Acid Batteries in Photovoltaic Applications." In ASME 2004 International Solar Energy Conference. ASMEDC, 2004. http://dx.doi.org/10.1115/isec2004-65134.

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Accurate charge-control and state-of-charge monitoring of lead-acid batteries is an ever-increasing necessity in an industry that demands low-maintenance costs and highly available systems. If the batteries are charged by photovoltaic panels and are installed in remote sites (e.g. Oil sea-platforms, highway emergency bays, autonomous communications systems) and exposed to aggressive environmental conditions (e.g. Extreme temperature, high humidity), the problem of extending the batteries’ useful life becomes a challenge. Most charging algorithms do not perform well when photovoltaic panels are
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Reports on the topic "Battery Charge Controller"

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Hammond, R. L., J. F. Turpin, and G. P. Corey. Photovoltaic battery & charge controller market & applications survey. An evaluation of the photovoltaic system market for 1995. Office of Scientific and Technical Information (OSTI), 1996. http://dx.doi.org/10.2172/444044.

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Kwon, Patrick, Carlos Juarez-Yescas, Hyewon Jeong, et al. Chemo-electrochemical evolution of cathode–solid electrolyte interface in all-solid-state batteries. Engineer Research and Development Center (U.S.), 2025. https://doi.org/10.21079/11681/49796.

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The stability of the interface between the cathode and the solid electrolyte (SE) has been found to be a key determinant of solid-state battery (SSB) performance. While interfacial failure from electro-chemical cycling has been studied, temperature effects on the chemical and electrochemical evolution of interface properties are not well-understood. We utilize a dense additive-free LiCoO2 cathode, which provides controlled morphology and crystallography, and well-known high voltage halide SEs (Li₃InCl₆ and Li₃YCl₆) to eliminate the need for cathode coating to explore the nature of interface de
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