The Battery State of Charge Indicator is a Power Electronics project that combines Communication module and Battery monitoring, built with BMS IC. The project follows a clean, modular pipeline where power conversion, control, and monitoring stay separated, making it easy to test, extend, and present. It showcases practical Power Electronics techniques while producing a working, demo-ready system.
Conventional power systems for this task are inefficient, costly, and lack precise control. Without a Power Electronics approach built on Battery monitoring and BMS IC, users cannot efficiently convert, regulate, and control electrical power, and there is no reliable way to monitor or improve performance.
This project applies Power Electronics techniques through Communication module, orchestrated with BMS IC and Battery monitoring. The system is designed for efficiency and safety, with power stage design, control logic, and clear evaluation. It produces consistent, reusable results and can be adapted to related power tasks with minimal changes.
BMS IC
Arduino
Power semiconductors (MOSFET / IGBT / SCR)
Microcontroller control
Simulation tools
Oscilloscope and power measurement
Buck converter
Battery sensors
Modular power system around Communication module and Battery monitoring
Configurable control and protection settings
Clear monitoring, metrics, and error handling
Clean interface for viewing results
Reusable components for related power tasks
Efficiency and safety evaluation
The project is layered: the power stage handles conversion through Communication module; the control layer drives and regulates the system with BMS IC and Battery monitoring; and the output layer monitors and presents results via Protection logic. Shared protection, sensing, and monitoring modules support all layers, keeping the system safe and easy to extend.
Study the circuit, choose components, and design the schematic.
Build the power stage with Communication module.
Implement the control logic using BMS IC and Battery monitoring.
Add the output and monitoring layer via Protection logic.
Wire up end-to-end flows and add protection and error handling.
Test with load, measure performance, and refine parameters.
Package the project, document it, and prepare the demo and viva report.
Build production-style Power Electronics systems
Apply Monitoring battery state and Cell balancing
Design power stages and control loops
Work with converters, inverters, and drives
Present and defend a complete Power Electronics project in viva
Add remote monitoring and IoT connectivity
Improve efficiency with advanced topologies
Add automatic fault recovery
Scale the design for higher power ratings
The Battery State of Charge Indicator delivers a complete Power Electronics workflow — from power conversion and control to monitoring and presentation. It is practical, modern, and easy to explain, making it an excellent final year project that demonstrates in-demand power electronics skills.