Academic literature on the topic 'Solar battery charger'

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Journal articles on the topic "Solar battery charger"

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Jadhav, B. N., and N.A. Doshi. "Battery Balancing System for Electric Vehicle with Solar Panel." Recent Trends in Analog Design and Digital Devices 4, no. 1 (2021): 1–4. https://doi.org/10.5281/zenodo.5031699.

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We propose a battery balancing system for Electric Vehicle with solar panel. There are three modes of operation of the system viz Solar balancing, Storage balancing, and Charge balancing. The solar-balancing mode charges the battery module with the lowest state of charge (SOC) using the solar power during vehicle driving, the charge-balancing mode is operated when the vehicles parked and being charged by the conventional charger. At the point when the solar power is low, the storage-balancing mode will be chosen to accuse the battery module of the least SOC utilizing energy stored in the stora
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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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Rony, Zahidul Islam, MA Rony, M. Hasan, NA Nithe, and MN Uddin. "Analysis and Design of a Solar Home System." Saudi Journal of Engineering and Technology 8, no. 10 (2023): 255–66. http://dx.doi.org/10.36348/sjet.2023.v08i10.004.

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Solar panels-the vital element of this SSHS makes use of exhausted energy. Compared to all other energy solar energy is abundant and free that can be used to charge batteries used for any module or electrical kits which are obvious for daily usage. The Smart Charge Controller will be designed such, so that the solar battery does not get over charged thereby ensuring no reduction of durability of the battery. This kind of system requires sensors to sense whether the battery is fully charged or not. After fully charged, detection safety can be achieved by designing a logic system in the charger,
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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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Dr.S.N.Dhurvey, Nidhi S. Shirbhate, Tanvi M. Jiwane, Saloni B. Badwaik, Achal K. Mokadam, and Krutika A.Bele. "Coin Based Mobile Charging System." international journal of engineering technology and management sciences 7, no. 3 (2023): 165–74. http://dx.doi.org/10.46647/ijetms.2023.v07i03.022.

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In the modern communication environment and day-to-day life, mobile phones now play a significant role. The mobile battery charger on coin insertion is described in this paper. When a normal charger is not available, the battery frequently runs out in the middle of a conversation, especially during inopportune times. Mobile battery chargers that use coins are created to address this issue. So this model, totally work and get charged by the solar power, which is to be mainly used at the metro stations by the people who want to connect with someone on urgent basis. After inserting a coin and plu
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Faizil Anuar, Putri Falyana Balqis, Nurfadzilah Ahmad, and Nur Alfarina Pirdaus. "Preliminary study of the dual power source system for 11kV manufacturing substation’s battery charger." IOP Conference Series: Earth and Environmental Science 1281, no. 1 (2023): 012027. http://dx.doi.org/10.1088/1755-1315/1281/1/012027.

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Abstract In the future, renewable energy sources will be a more sustainable solution. Solar energy can be used by the factory to charge a substation’s battery charger. The plan is to use solar energy to charge a battery charger in a factory. Solar energy is more efficient than coal, petroleum, and natural gas. This paper demonstrates the design or reconstruction of an existing circuit drawing to achieve the goal of this project. The design incorporates a changeover switch to perform the power supply changeover for solar energy in order to compare the efficiency of the battery charger using sol
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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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Hari, Mr S., Mr S. Dhanush, S. Hariprasath, S. Shriram, and N. Sridharan. "Interleaved Luo Converter fed-battery Charger Integrated with Solar Energy." International Journal of Research Publication and Reviews 6, no. 3 (2025): 5920–23. https://doi.org/10.55248/gengpi.6.0325.1275.

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Fernandes, Nicolas T. D., Anderson Rocha, Danilo Brandao, and Braz C. Filho. "Comparison of Advanced Charge Strategies for Modular Cascaded Battery Chargers." Energies 14, no. 12 (2021): 3361. http://dx.doi.org/10.3390/en14123361.

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Although the literature extensively covers the development of battery chargers control strategies, a comparison of these strategies remains a literary gap. The inherent conditions (i.e., State of Health and State of Charge) of each unit in the Battery Energy Storage Systems directly influence the charger control techniques for extending battery lifetime, which makes modular battery chargers an appealing topology for this analysis. This work groups charger control strategies presented in the literature into two: Adapted SoC strategies, directly linked to the field of overstress management, and
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Latifah, Wahyu, M. Nuzuluddin, and Intan Komala Dewi Patwari. "Rancang Bangun Kontrol Charger Station Dengan Panel Surya Berbasis Mikrokontroler." Jurnal PRINTER: Jurnal Pengembangan Rekayasa Informatika dan Komputer 2, no. 1 (2024): 1–14. https://doi.org/10.29408/jprinter.v2i1.23750.

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Charger station is one of the facilities needed by smartphone users, especially in public places such as tourist sites. Because there are still many battery charging places that use PLN electricity, so it is less effective when it is far from the reach of PLN electricity. Based on these problems, this research tries to provide a solution, namely developing a charger station at tourist sites through the use of solar panels and coin acceptors as a payment system for the charger facility, so that visitors can charge their smartphones easily and at a very affordable cost. The research method used
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Dissertations / Theses on the topic "Solar battery charger"

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Mukka, Manoj Kumar. "Simulink® Based Design and Implementation of a Solar Power Based Mobile Charger." Thesis, University of North Texas, 2016. https://digital.library.unt.edu/ark:/67531/metadc849640/.

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Electrical energy is used at approximately the rate of 15 Terawatts world-wide. Generating this much energy has become a primary concern for all nations. There are many ways of generating energy among which the most commonly used are non-renewable and will extinct much sooner than expected. Very active research is going on both to increase the use of renewable energy sources and to use the available energy with more efficiency. Among these sources, solar energy is being considered as the most abundant and has received high attention. The mobile phone has become one of the basic needs of modern
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Kašpárek, Martin. "Regulátor pro nabíjení NiMH akumulátorů z fotovoltaického panelu." Master's thesis, Vysoké učení technické v Brně. Fakulta elektrotechniky a komunikačních technologií, 2011. http://www.nusl.cz/ntk/nusl-218892.

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The aim of this master's thesis is suggest and construct regulator for charge NiMH storage battery from photovoltaic (PV) panel. Function regulator is tracking maximum power point from PV panel (MPPT), control charge and evaluation full charge of battery.
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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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LAMBERTI, ANDREA. "Metal-oxide nanostructures for energy applications." Doctoral thesis, Politecnico di Torino, 2013. http://hdl.handle.net/11583/2506221.

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One of the most important challenges for our society is providing powerful devices for energy conversion and storage. The number of proposed technologies in today’s green and renewable energy science is large and still increasing: among all the dye-sensitized solar cells (for energy generation) and Li-ions batteries (for energy storage) have attracted a lot of interest thanks to the easy fabrication processes and the cheap materials involved. Great attention has been paid on the investigation of one-dimensional metal-oxide nanostructures for a new generation of power sources, because of their
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Leitman, Valentín. "Koncept nabíjecí stanice s možností off-grid provozu pro elektrokola." Master's thesis, Vysoké učení technické v Brně. Fakulta elektrotechniky a komunikačních technologií, 2017. http://www.nusl.cz/ntk/nusl-319544.

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This thesis deals with charging stations for electric bicycles powered by renewable energy. The aim of this work is to make a proposal for the hybrid charging stations for electric bicycles, which will work independently and, if necessary, will be backed up by a network. In this thesis is entered theoretical information on the issue of electric bicycles, the batteries, charging stations, the connectors of chargers, and photovoltaic systems. The practical part of this thesis is the basic design of the charging station and its design of the mathematical model of the individual parts in Simulink
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Huang, Cheng Ching, and 黃成靖. "CMOS Battery Charger for Solar Energy Harvesting." Thesis, 2014. http://ndltd.ncl.edu.tw/handle/60724763016389312536.

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碩士<br>長庚大學<br>電子工程學系<br>102<br>This research integrates a ring oscillator, a buffer, a boost converter circuit and a battery charger circuit for use solar energy to charge Li-ion battery. The battery charger is designed to convert solar energy to electricity and then store it in the battery. Because the output voltage of the solar cell is lower than normal voltage source, it uses the boost converter to boost voltage into higher level. Next, a battery charger circuit which uses the output voltage of the boost converter protects the Li-ion rechargeable battery. So we achieve the target which use
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Yang, Ruey-Haur, and 楊瑞豪. "Application of the Solar Energy Handset Battery Charger." Thesis, 2007. http://ndltd.ncl.edu.tw/handle/44868038946626068384.

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碩士<br>國立高雄第一科技大學<br>機械與自動化工程所<br>95<br>Most cell phone chargers in Taiwan are inserting chargers. However, the voltage, frequency, and socket are different in foreign countries. They have many accessories, and this makes them inconvenient to use. Nevertheless, solar power is a free-charge and easy accessible energy. Therefore, the thesis of this research is to design a cell phone charger that uses solar power to function. The content of this research can be categorized into four divisions: introduction to solar cell, various forms of charging and their applications, introducing the boost-up ci
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Pan, Tzu-Tang, and 潘子塘. "Soft-Switching DC/DC Converter Used in Solar-Energy Battery Charger." Thesis, 2000. http://ndltd.ncl.edu.tw/handle/06208674714581600590.

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碩士<br>國立臺北科技大學<br>電機與能源研究所<br>88<br>The use of renewable energy, such as biomass, wind power, solar energy is getting more and more attentions due to the depletion of fossil fuels and the accumulation of green house gases. Among them, solar energy is the most attractive one because of being ubiquitous and abundant. However, cost and low conversion efficiency of solar cells have stymied its growth of use. One way to harness solar energy more efficiently is to store it when it is plenty and use it when needed. By this, we can better coordinate the time difference in demand and supply. Storing so
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Ke, Jyunyan, and 柯鈞嚴. "Design And Implementation of Intelligent Composite Battery Charger for Solar Energy Lighting." Thesis, 2012. http://ndltd.ncl.edu.tw/handle/19520333434152150811.

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碩士<br>南開科技大學<br>電機與資訊工程研究所<br>100<br>The lead-acid batteries were used in most of the traditional storage batteries for outdoor solar lighting systems due to the cost considerations. Therefore there were many disadvantages, such as poor charging efficiency, easy to age for the battery, shorter life cycle, lower temperature resistance and heavy weight. The thesis proposes an intelligent composite battery charging controller combining the advantages of lead-acid battery and lithium-ion battery for solar lighting systems to improve the shortcomings of the existing lead-acid battery. When the sunl
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Li, Yen-Chen, and 李彥臻. "A DC-DC Converter for Li-ion Battery Charger with a Solar Panel." Thesis, 2015. http://ndltd.ncl.edu.tw/handle/23026559475718475175.

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碩士<br>國立清華大學<br>電子工程研究所<br>103<br>Since the economic activities are going globalization, the developments of the personal electronic products are gradually toward portable, lightweight and powerful. However, all kinds of energy resources from the Earth are limited. Because the economic activities increased rapidly, the global warming and environmental pollution have been getting more serious. For this reason, people start promoting the Green-Energy consciousness in which the renewable energy source is a very important topic. An important character of the renewable energy source, either solar p
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Books on the topic "Solar battery charger"

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Tom, French. Solar made simple: How to use a solar panel to charge your RV battery. Artifax Books, 1997.

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Pierce, Linda. AN2321 - Solar MPPT Battery Charger for the Rural Electrification System. Microchip Technology Incorporated, 2016.

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Hedger, Jack. Power Without Pollution: How to Build a Solar Powered Battery Charger (Using Inexpensive, Easy-to-Find Materials). Akela West Publishers, 1992.

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MCCARTHY. Portable Solar LG GS290 Smartphone Charger/Recharger in a Eco-Slim, Smooth, Durable Design. Rid yourself of the wall plug, save money, go green or use in an emergency. Reliable Dual Direct Solar Integrated Battery Kit. Includes Micro-USB Charging Cable. MONDADORI, 2013.

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COETZEE. Portable Solar LG GM-360 Phone Charger/Recharger in a Eco-Slim, Smooth, Durable Design. Rid yourself of the wall plug, save money, go green or use in an emergency. Reliable Dual Direct Solar Integrated Battery Kit. Includes Micro-USB Charging Cable. MONDADORI, 2013.

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Book chapters on the topic "Solar battery charger"

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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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Lenka, Rajesh Kumar, Anup Kumar Panda, Venkataramana Naik N, Laxmidhar Senapati, and Nishit Tiwary. "Multifunctional PV-Integrated Bidirectional Off-Board EV Battery Charger Targeting Smart Cities." In Wind and Solar Energy Applications. CRC Press, 2023. http://dx.doi.org/10.1201/9781003321897-20.

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Singh, Mukul, Omveer Singh, M. A. Ansari, Vishwamitra Singh, and Simran Chaubey. "Solar Energy-Based Battery Charger and Motion Sensing Alarm Using Arduino." In Lecture Notes in Electrical Engineering. Springer Nature Singapore, 2022. http://dx.doi.org/10.1007/978-981-19-4971-5_13.

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Dsilva, Adrian, Samith Suvarna, Laxmisha G. Ballal, and H. Swathi Hatwar. "Design of a Solar Battery Charger with Maximum Power Point Tracking." In Lecture Notes in Electrical Engineering. Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-99-6151-1_6.

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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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Jossen, A., A. Bosch, H. P. Hönes, et al. "Battery Control Unit with State of Charge Indicator." In Tenth E.C. Photovoltaic Solar Energy Conference. Springer Netherlands, 1991. http://dx.doi.org/10.1007/978-94-011-3622-8_259.

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Tseng, Pin-Hsiang, Chen-Yin Xu, and Chi-Cheng Chang. "The Impact of Hands-on Activities Integrating Design Thinking on the Creative Self-efficacy and Learning Performance of Junior High School Students: A Case of Producing Solar Battery Charger." In Lecture Notes in Computer Science. Springer Nature Switzerland, 2023. http://dx.doi.org/10.1007/978-3-031-40113-8_16.

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Hadi, Nur Amirah Liyana Abdul, Noor Hidayah Mohd Yunus, and Mohd Shahrul Mohd Nadzir. "Development of a Wireless Solar Power Transmission for Battery Chargers." In Advanced Structured Materials. Springer Nature Switzerland, 2023. http://dx.doi.org/10.1007/978-3-031-21959-7_14.

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Pressas, S. A., and V. Makios. "A Reliable Photovoltaic Battery Charge Regulator with Ideal VB; IB vs t Profile." In Tenth E.C. Photovoltaic Solar Energy Conference. Springer Netherlands, 1991. http://dx.doi.org/10.1007/978-94-011-3622-8_255.

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Iliceto, A., A. Previ, S. Guastella, and A. Pappalardo. "Performance of Different Types of Battery Charge Regulators in Stand-Alone PV Systems." In Tenth E.C. Photovoltaic Solar Energy Conference. Springer Netherlands, 1991. http://dx.doi.org/10.1007/978-94-011-3622-8_308.

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Conference papers on the topic "Solar battery charger"

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Bhowmik, Satadal, Suryakant Kumar, and Gauri Shankar. "Solar PV-Based Mobile Phone Battery Charger." In 2025 IEEE 1st International Conference on Smart and Sustainable Developments in Electrical Engineering (SSDEE). IEEE, 2025. https://doi.org/10.1109/ssdee64538.2025.10968693.

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Samanta, Arpan Kumar, V. Gouri Prasant, Neil Samaddar, and Dipankar Debnath. "Dual Solar PV based Battery Charger for E-rickshaw Applications." In 2024 6th International Conference on Energy, Power and Environment (ICEPE). IEEE, 2024. http://dx.doi.org/10.1109/icepe63236.2024.10668858.

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Talawar, Siddappa, Mruttanjaya Sanganna Aspalli, and Bhagyalaxmi. "Fast-Tag Battery Charger for Electric Vehicles Powered by Solar Energy." In 2024 International Conference on Innovation and Novelty in Engineering and Technology (INNOVA). IEEE, 2024. https://doi.org/10.1109/innova63080.2024.10847050.

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Priya, Kumari, and Rajesh Gupta. "Dual Mode EV Battery Charger Integrating Solar PV-Grid-Load with DC Charging." In 2024 IEEE Students Conference on Engineering and Systems (SCES). IEEE, 2024. http://dx.doi.org/10.1109/sces61914.2024.10652487.

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Bhargav, Allu, and Indrajit Sarkar. "V2G and G2V Modes of Grid-Connected Solar EV Battery Charger with Harmonic Compensation." In 2024 IEEE 4th International Conference on Sustainable Energy and Future Electric Transportation (SEFET). IEEE, 2024. http://dx.doi.org/10.1109/sefet61574.2024.10718240.

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Ko, Byeong Su, Han Jun Jang, Hyoung Ku Kang, and Il Song Kim. "A New Control Strategy of the Solar Buck Battery Charger using the Interleaved Ampere-Sec Balance Control." In 2024 IEEE 21st International Power Electronics and Motion Control Conference (PEMC). IEEE, 2024. http://dx.doi.org/10.1109/pemc61721.2024.10726414.

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Casini, D., and G. Marola. "Solar battery charger for NiMH batteries." In 2008 International Symposium on Power Electronics, Electrical Drives, Automation and Motion (SPEEDAM). IEEE, 2008. http://dx.doi.org/10.1109/speedham.2008.4581244.

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Pastre, Marc, Francois Krummenacher, Roberto Robortella, Raphael Simon-Vermot, and Maher Kayal. "A fully integrated solar battery charger." In 2009 Joint IEEE North-East Workshop on Circuits and Systems and TAISA Conference (NEWCAS-TAISA). IEEE, 2009. http://dx.doi.org/10.1109/newcas.2009.5290487.

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Liu, Ke, and John Makaran. "Design of a solar powered battery charger." In Energy Conference (EPEC). IEEE, 2009. http://dx.doi.org/10.1109/epec.2009.5420817.

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Kim, Il-Song, Pyeong-Sik Ji, Un-Dong Han, Chin-Gook Lhee, and Hong-Gyu Kim. "State estimator design for solar battery charger." In 2009 IEEE International Conference on Industrial Technology - (ICIT). IEEE, 2009. http://dx.doi.org/10.1109/icit.2009.4939529.

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Reports on the topic "Solar battery charger"

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Nelson, Jordan, Daria Rybalka, and David Ehrhardt. Montego Bay Bus Fleet Electrification Business Case. Inter-American Development Bank, 2022. http://dx.doi.org/10.18235/0004626.

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This report assesses the feasibility of a scalable and replicable project to replace Montego Bay Metros (MBM) aging fleet of diesel buses with electric buses powered by 100 percent renewable energy. It identifies battery electric buses charged with electricity from floating solar PV as the best option for achieving that goal; shows that, when the social cost of carbon is included, this is least cost option compared with the cost of replacing MBMs fleet with new diesel buses and with electric buses powered by Jamaicas electricity grid; and provides advice on what support is required to make thi
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Yang, Yu, Hen-Geul Yeh, and Cesar Ortiz. Battery Management System Development for Electric Vehicles and Fast Charging Infrastructure Improvement. Mineta Transportation Institute, 2024. http://dx.doi.org/10.31979/mti.2024.2325.

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The electric vehicle (EV) has become increasingly popular due to its being zero-emission. However, a significant challenge faced by EV drivers is the range anxiety associated with battery usage. Addressing this concern, this project develops a more efficient battery management system (BMS) for electric vehicles based on a real-time, state-of-charge (SOC) estimation. The proposed study delivers three modules: (1) a new equivalent circuit model (ECM) for lithium-ion batteries, (2) a new SOC estimator based on the moving horizon method, and (3) an on-board FPGA implementation of the classical Cou
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