Abstract
This paper analyses the parameterisation of protective relays in industrial power distribution stations, focusing on the quantitative relationship between network load and protection system response time. Laboratory simulations using a dedicated automation cabinet and varying network configurations (six streams at 80 samples/cycle and two to four streams at 256 samples/cycle) revealed a clear correlation: higher network loads lead to longer trip times. Under maximum load (four streams, 256 samples/cycle), response times reached up to 63.75 ms. These delays stemmed from network congestion rather than relay instability. The extended clearing times increased the short-circuit energy (I2t) by approximately 35% on average and over 55% in critical scenarios, requiring upsizing of PVC-insulated conductors from 16 mm2 to 25 mm2 to maintain short-circuit withstand capacity. The findings demonstrate the practical impact of network-induced delays on protection performance, thermal stress, and cable sizing, providing a basis for optimising relay settings and system configuration in modern digital power distribution networks.
Author supplied keywords
Cite
CITATION STYLE
Sołtysek, Ł., Rozegnał, B., Nowacki, K., & Gajos, M. (2025). Analysis of the Relationship Between Digital Network Load and Response Time for the Protection System in Industrial Power Stations. Energies, 18(22). https://doi.org/10.3390/en18225894
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.