How can you understand battery health without taking systems offline?
For operators relying on large banks of series-connected lead acid batteries, maintaining uptime is critical. In industries such as telecommunications, data centres, utilities, and industrial backup power, shutting down systems to test battery health is often impractical and costly.
This case study outlines how we enabled accurate internal resistance measurement of lead acid batteries while the battery chain remained fully operational - either under load, charging, or both.
The Challenge: Measuring battery internal resistance under load
A client required a reliable method to measure the internal resistance of each battery in a series-connected chain without disconnecting or isolating the system.
Traditional vs On-Load Testing
|
Feature |
Traditional Battery Testing |
On-Load Internal Resistance Measurement |
|
System shutdown required |
Yes |
No |
|
Manual testing |
Often required |
Automated |
|
Measures true internal resistance |
Limited |
Yes |
|
Real-time monitoring |
No |
Yes |
|
Suitable for large battery banks |
Complex |
Scalable (ring topology) |
The objective was to develop a non-intrusive battery monitoring solution that could operate continuously and provide meaningful health diagnostics.
The Solution: On-Load internal resistance measurement
Our engineering team designed a system capable of accurately measuring internal resistance while the batteries remained in use.
The process works as follows:
Why internal resistance matters
Internal resistance is a proven indicator of:
By monitoring internal resistance in real time, operators can:
Scalable battery bank monitoring
The monitoring units can be connected in a ring topology, enabling internal resistance measurement across an entire battery bank. This scalable architecture makes the solution ideal for:
Key technical features
Results
This solution enabled continuous battery health monitoring without operational disruption. The client gained:
Conclusion
Measuring lead acid battery internal resistance without taking systems offline is not only possible - it is practical, accurate, and scalable.
By combining controlled load injection, precision voltage measurement, and advanced digital signal processing, this solution delivers actionable battery health data while maintaining full system operation.
For organisations relying on mission-critical battery systems, this approach provides a powerful foundation for predictive maintenance and long-term reliability optimisation.