Microcontroller-Based Lead-Acid Battery Balancing System for Electric Vehicle Applications

In application of lead-acid batteries for electrical vehicle applications, 48 V of four 12 V batteries in a series configuration are required. However, the battery stack is repeatedly charged and discharged during operation. Hence, differences in charging and discharging speeds may result in a diffe...

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Main Authors: Ali Rospawan, Joni Welman Simatupang
Format: Article
Language:English
Published: Indonesian Institute of Sciences 2021-12-01
Series:Jurnal Elektronika dan Telekomunikasi
Subjects:
Online Access:https://www.jurnalet.com/jet/article/view/439
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author Ali Rospawan
Joni Welman Simatupang
author_facet Ali Rospawan
Joni Welman Simatupang
author_sort Ali Rospawan
collection DOAJ
description In application of lead-acid batteries for electrical vehicle applications, 48 V of four 12 V batteries in a series configuration are required. However, the battery stack is repeatedly charged and discharged during operation. Hence, differences in charging and discharging speeds may result in a different state-of-charge of battery cells. Without proper protection, it may cause an excessive discharge that leads to premature degradation of the battery. Therefore, a lead-acid battery requires a battery management system to extend the battery lifetime. Following the LTC3305 balancing scheme, the battery balancing circuit with auxiliary storage can employ an imbalance detection algorithm for sequential battery. It happens by comparing the voltage of a battery on the stack and the auxiliary storage. In this paper, we have replaced the function of LTC3305 by a NUCLEO F767ZI microcontroller, so that the balancing process, the battery voltage, the drawn current to or from the auxiliary battery, and the surrounding temperature can be fully monitored. The prototype of a microcontroller-based lead-acid battery balancing system for electrical vehicle application has been fabricated successfully in this work. The batteries voltage monitoring, the auxiliary battery drawn current monitoring, the overcurrent and overheat protection system of this device has also successfully built. Based on the experimental results, the largest voltage imbalance is between battery 1 and battery 2 with a voltage imbalance of 180 mV. This value is still higher than the target of voltage imbalance that must be lower than 12.5 mV. The balancing process for the timer mode operation is faster 1.5 times compared to the continuous mode operation. However, there were no overcurrent or overtemperature occurred during the balancing process for both timer mode and continuous mode operation. Furthermore, refinement of this device prototype is required in the future to improve the performance significantly.
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spelling doaj.art-d449fe0e4c9f44f9b9100a09c53fdbe32022-12-21T17:49:17ZengIndonesian Institute of SciencesJurnal Elektronika dan Telekomunikasi1411-82892527-99552021-12-0121212813910.14203/jet.v21.128-139238Microcontroller-Based Lead-Acid Battery Balancing System for Electric Vehicle ApplicationsAli Rospawan0Joni Welman Simatupang1President UniversityPresident UniversityIn application of lead-acid batteries for electrical vehicle applications, 48 V of four 12 V batteries in a series configuration are required. However, the battery stack is repeatedly charged and discharged during operation. Hence, differences in charging and discharging speeds may result in a different state-of-charge of battery cells. Without proper protection, it may cause an excessive discharge that leads to premature degradation of the battery. Therefore, a lead-acid battery requires a battery management system to extend the battery lifetime. Following the LTC3305 balancing scheme, the battery balancing circuit with auxiliary storage can employ an imbalance detection algorithm for sequential battery. It happens by comparing the voltage of a battery on the stack and the auxiliary storage. In this paper, we have replaced the function of LTC3305 by a NUCLEO F767ZI microcontroller, so that the balancing process, the battery voltage, the drawn current to or from the auxiliary battery, and the surrounding temperature can be fully monitored. The prototype of a microcontroller-based lead-acid battery balancing system for electrical vehicle application has been fabricated successfully in this work. The batteries voltage monitoring, the auxiliary battery drawn current monitoring, the overcurrent and overheat protection system of this device has also successfully built. Based on the experimental results, the largest voltage imbalance is between battery 1 and battery 2 with a voltage imbalance of 180 mV. This value is still higher than the target of voltage imbalance that must be lower than 12.5 mV. The balancing process for the timer mode operation is faster 1.5 times compared to the continuous mode operation. However, there were no overcurrent or overtemperature occurred during the balancing process for both timer mode and continuous mode operation. Furthermore, refinement of this device prototype is required in the future to improve the performance significantly.https://www.jurnalet.com/jet/article/view/439battery balancing system, electric vehicle, ltc3305, microcontroller, nucleo f767zi, voltage imbalance
spellingShingle Ali Rospawan
Joni Welman Simatupang
Microcontroller-Based Lead-Acid Battery Balancing System for Electric Vehicle Applications
Jurnal Elektronika dan Telekomunikasi
battery balancing system, electric vehicle, ltc3305, microcontroller, nucleo f767zi, voltage imbalance
title Microcontroller-Based Lead-Acid Battery Balancing System for Electric Vehicle Applications
title_full Microcontroller-Based Lead-Acid Battery Balancing System for Electric Vehicle Applications
title_fullStr Microcontroller-Based Lead-Acid Battery Balancing System for Electric Vehicle Applications
title_full_unstemmed Microcontroller-Based Lead-Acid Battery Balancing System for Electric Vehicle Applications
title_short Microcontroller-Based Lead-Acid Battery Balancing System for Electric Vehicle Applications
title_sort microcontroller based lead acid battery balancing system for electric vehicle applications
topic battery balancing system, electric vehicle, ltc3305, microcontroller, nucleo f767zi, voltage imbalance
url https://www.jurnalet.com/jet/article/view/439
work_keys_str_mv AT alirospawan microcontrollerbasedleadacidbatterybalancingsystemforelectricvehicleapplications
AT joniwelmansimatupang microcontrollerbasedleadacidbatterybalancingsystemforelectricvehicleapplications