REGENERATION BATTERY
DUONG VAN SINH , Binh Duong , VietNam
Mr. Sinh has dedicated his expertise to the field of battery regeneration for many years. His extensive knowledge and experience in battery technology and recycling have enabled him to develop a groundbreaking approach to rejuvenating batteries, particularly lead acid batteries.
His expertise and contributions in the field of battery regeneration have earned him recognition and acclaim from industry experts and professionals.
Corresponding Author Email: greenbatteriesremake@gmail.com
DOI : https://doi.org/10.5281/zenodo.7997472
Abstract
Battery waste and environmental concerns have become significant challenges in today’s world. Lead-acid batteries, in particular, contribute to the growing e-waste problem due to their extensive usage in various industries. However, the emergence of battery regeneration technology provides a sustainable solution to mitigate these challenges. This research paper explores the concept, benefits, and potential applications of battery regeneration technology, highlighting its positive impact on the environment and economic aspects. The paper also discusses the scientific principles behind the regeneration process, successful case studies, and prospects of this innovative technology.
Keywords
I. INTRODUCTION
The increasing demand for lead-acid batteries, coupled with the environmental impact of battery waste, necessitates the development of sustainable solutions. Battery regeneration technology offers a promising approach to address these concerns while extending the life and functionality of batteries. This research paper aims to provide a comprehensive analysis of this technology and its potential benefits.
πππ2 + 2π»2ππ4 + ππ β 2ππππ4 + 2π»2 (11)
A battery is an electrochemical device that converts stored chemical energy into electrical energy through a series of chemical reactions. It consists of one or more electrochemical cells connected in a series or parallel configuration. Each cell comprises two electrodes, namely the cathode (positive electrode) and the anode (negative electrode), separated by an electrolyte solution.
Positive: ππ2 + 4π»+ + 2πβ β ππ2+ + 2π»2π
Negative: ππ β ππ2+ + 2πβ
During the charging process, the active materials of the battery facilitate the conversion of lead sulfate back to its original form.
4 |
Positive: ππππ4 + 2π»2π β πππ2 + π»ππβ + 3π»+ + 2πβ
4 |
Negative: ππππ4 + π»+ β ππ + π»ππβ (13)
During the discharge process, a chemical reaction occurs within the battery, causing the anode to release electrons and the cathode to accept them. This creates an electrical current that can be utilized to power various devices. Simultaneously, the electrolyte facilitates the movement of ions between the electrodes to maintain charge balance.(12)
Figure 1. Application
Figure 2 High-Frequency Pulse
Figure 3 High-Frequency Pulse in Scale
IV. EXPERIMENT
This experiment aimed to compare the effect of lead-acid batteries with sulfate on plates when charged with high-frequency pulse. The experiment was divided into two phases. The first was battery charging with conventional chargers and the second was charging with high frequency pulse.
Figure 4 Experiment
Figure 5 Scrap Batteries
VI. CONCLUSION
Battery regeneration technology offers a sustainable solution to the global battery waste problem. by rejuvenating lead-acid batteries, this technology contributes to environmental conservation, cost savings, and resource efficiency. with its wide-ranging applications and potential for further advancements, battery regeneration is poised to revolutionize the battery industry and promote a greener and more sustainable future.
ACKNOWLEDGMENTS