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Journal : Kinetik: Game Technology, Information System, Computer Network, Computing, Electronics, and Control

Design of SEPIC Converter for Battery Charging System using ANFIS Suryono; Sudiharto, Indhana; Anggriawan, Dimas Okky; Jufriyadi, Mohammad
Kinetik: Game Technology, Information System, Computer Network, Computing, Electronics, and Control Vol. 9, No. 2, May 2024
Publisher : Universitas Muhammadiyah Malang

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.22219/kinetik.v9i2.1954

Abstract

Rechargeable batteries are the most widely used medium for storing energy today. One type of rechargeable battery that is widely used is lithium-ion batteries. The large use of lithium-ion batteries in society requires companies to conduct research so that the life time of these batteries can last a long time and charging can take place quickly. Charging system at this time is less efficient in charging lithium batteries where the time needed is still quite long where when lithium batteries are charged with a long time can cause the battery to heat up quickly and can reduce the life time of the battery. To overcome this, a system is needed that can control the battery charger process so that the output voltage and current are constant and battery charging is faster. It is hoped that the SEPIC converter system can help many people who forget to unplug the power supply during the charging process so as to maintain the life time of the battery. Setting the output voltage and current in the DC-DC converter can be done using an Adaptive Neuro Fuzzy Inference System which aims to keep the output of SEPIC stable according to the setting point. In this system, the DC-DC converter used is a SEPIC converter which can increase and decrease the output voltage for battery charging. The battery charging process uses the CC-CV method. In the test, the average error is 0.025% where when the SOC is 60% to 80% the average error is 0.04% and when the SOC is 80% to 95% the average error is 0.0005%.
Design and Simulation of Battery Charging System with Constant Temperature–constant Voltage Method Sudiharto, Indhana; Wahjono, Endro; Sasetyo, Muhammad Yudha; Suryono; Budikarso, Anang
Kinetik: Game Technology, Information System, Computer Network, Computing, Electronics, and Control Vol. 10, No. 2, May 2025
Publisher : Universitas Muhammadiyah Malang

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.22219/kinetik.v10i2.2194

Abstract

Batteries are essential to many contemporary applications, including electric cars and portable electronics. Overheating and charging time efficiency are the two biggest issues with battery charging. Overheating presents safety hazards and hastens battery deterioration. Due to their inability to regulate temperature, conventional charging techniques like Constant Current - Constant Voltage (CC-CV) result in excessive temperature rises during battery charging, which shortens battery life. A novel approach that helps lessen excessive temperature rises is the Constant Temperature - Constant Voltage (CT-CV) method, according to researchers. In order to avoid excessive temperature increases during the initial charging, the CT technique initially regulates the applied temperature. Second, to guarantee full capacity without causing damage to the battery, the CV technique is used to maintain a steady voltage. A fuzzy logic controller (FLC) control system is used to regulate the temperature and current at the DC-DC converter's output. The FLC control system's goal is to control the duty cycle such that the buck converter's output is 65V 11.5A. The simulation results show that the CT-CV method can reduce the increase in temperature in the battery with an average temperature during the battery charging process of 23.57° C with fuzzy control and 23.71° C with PI control. In addition, by comparing two control systems with the CT-CV method, namely PI and fuzzy, it was found that the fuzzy method was able to accelerate battery charging by 4.16% compared to the PI control.
Co-Authors Afriani Agustin Wulan Amalia, Rahmi Ayu Budi Anang Budikarso, Anang Anas Tamsuri Anis Murniati Anna P. Jempormase Aris Dwi C Aris Dwi C. Aris Dwi Cahyono, Aris Dwi Aris, Muhammad Asam Khalifa Mohammed Aswar Limi Ayu Munawaroh Bahtiar, Ade Candra Bahtiar Biring, Geneviene N. D. Budiyati, Arum Calista Padma Paramitha Sugiyanto christianto nugroho Cynthia E. V. Wuisang David Singal Diana S. Lahengko Didik Susetiyanto Atmojo Dimas Okky Anggriawan Dinda Novi Karisma Dwi Rahayu Eko Pujianto, Pangestu Elfi Quyumi Rahmawati Endro Wahjono, Endro Erni Rahmawati Esli D. Takumansang Ester Restiana Endang Gelis Fajar Rinawati Fannidya H.Z. Fannidya Hamdani Zeho Fannidya HZ Fanny Adinda Putri Frits O. P. Siregar Geraldy M. Anaktototy Haerudin Hani, Sofia Hendriek H. Karongkong Indhana Sudiharto Indra Bramanti Ismianti Jaya, Susanti Tria Judy O. Waani Jufriyadi, Mohammad Kawengian, Claudia K. Kenny M. Pangkerego Krisnawati, Dyah Ika Laode Kasno Arif Leonardo A. Kumayas Luluk S. Luluk Susiloningtyas Luvesto Loloangin M Hariski Mawaddah, S. E. Muhamad Khafid Nafi, Nasrul Annafi Nehemia Tirajoh NURIN FAUZIYAH Ogya J. Ingkiriwang OOctavianus H. A. Rogi Pierre H. Gosal Pratiwi Yuliansari Rachmat Prijadi Retno Wulansari Riskha Dora Candra Dewi Rodrigo N. Kaunang Roosje J. Poluan RR. Ella Evrita Hestiandari Runjati Sasetyo, Muhammad Yudha Septian Aris Munandar Septy Heltria Siti Sunarintyas Soesatyoratih, Roro Sonny Tilaar Sri Budi Barunawati Sri Novianti Sumariyah Sumariyah Suryani, Putri Aulia Sus Derthi Widhyari Triani, Ratu Anggi W. Widjijono Wiseno, Bambang WULANDARI Yoppie Wulanda Yunarsih Zauhani Kusnul