Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Fault Detection and Protection of High Voltage Transmission Line, Integrated With Hybrid Renewable Energy Sources

View through CrossRef
The integration of renewable energy sources into modern power systems has necessitated the development of advanced fault detection and protection mechanisms to ensure system stability and reliability. This research presents the modelling, simulation, and analysis of a fault detection and protection system for high-voltage transmission lines integrated with hybrid renewable energy sources, including wind and solar energy. The study focuses on fault detection, isolation, and relay coordination to enhance the resilience of transmission networks while mitigating power disruptions caused by various fault scenarios. The study investigated fault occurrences at different locations along the transmission line, including the sending end, receiving end, intermediate points, and renewable energy connection nodes. Faults were simulated at 25 km, 50 km, and 75 km from the source, with varying fault resistances. Key parameters such as voltage at fault points, current surges, relay operation time, sensitivity, coverage area, and system stability were evaluated. Advanced signal processing techniques, including wavelet transform analysis, were employed to assess system behaviour during fault conditions, ensuring accurate fault detection and isolation. Results indicated that the Intermediate Point Configuration provided the most balanced approach, offering comprehensive fault coverage, optimal isolation, and minimal system disruption. The impact of different fault types, including Lineto-Ground (LG), Line-to-Line-to-Ground (LLG), and Three-Phase (LLL), was analysed, revealing that three-phase faults caused the most severe disturbances, including voltage collapse and high fault currents. Relay operations were incorporated to isolate faulty sections of the network promptly, ensuring minimal disruption to the overall system. The results demonstrated that relay coordination was effective, with primary relays tripping first, followed by backup relays when necessary. The study also highlighted challenges posed by high-resistance faults and faults at distant locations, which require more sensitive detection techniques. Plots of voltage and current profiles at detection points provided a visual representation of the system's dynamic behaviour under fault conditions. The research concludes that adopting the Intermediate Point Configuration enhances the reliability of high-voltage transmission systems, particularly in networks incorporating renewable energy sources. The findings contribute to the development of improved fault d
Nigerian Journal of Engineering Research, Faculty of Engineering, University of Cross River State
Title: Fault Detection and Protection of High Voltage Transmission Line, Integrated With Hybrid Renewable Energy Sources
Description:
The integration of renewable energy sources into modern power systems has necessitated the development of advanced fault detection and protection mechanisms to ensure system stability and reliability.
This research presents the modelling, simulation, and analysis of a fault detection and protection system for high-voltage transmission lines integrated with hybrid renewable energy sources, including wind and solar energy.
The study focuses on fault detection, isolation, and relay coordination to enhance the resilience of transmission networks while mitigating power disruptions caused by various fault scenarios.
The study investigated fault occurrences at different locations along the transmission line, including the sending end, receiving end, intermediate points, and renewable energy connection nodes.
Faults were simulated at 25 km, 50 km, and 75 km from the source, with varying fault resistances.
Key parameters such as voltage at fault points, current surges, relay operation time, sensitivity, coverage area, and system stability were evaluated.
Advanced signal processing techniques, including wavelet transform analysis, were employed to assess system behaviour during fault conditions, ensuring accurate fault detection and isolation.
Results indicated that the Intermediate Point Configuration provided the most balanced approach, offering comprehensive fault coverage, optimal isolation, and minimal system disruption.
The impact of different fault types, including Lineto-Ground (LG), Line-to-Line-to-Ground (LLG), and Three-Phase (LLL), was analysed, revealing that three-phase faults caused the most severe disturbances, including voltage collapse and high fault currents.
Relay operations were incorporated to isolate faulty sections of the network promptly, ensuring minimal disruption to the overall system.
The results demonstrated that relay coordination was effective, with primary relays tripping first, followed by backup relays when necessary.
The study also highlighted challenges posed by high-resistance faults and faults at distant locations, which require more sensitive detection techniques.
Plots of voltage and current profiles at detection points provided a visual representation of the system's dynamic behaviour under fault conditions.
The research concludes that adopting the Intermediate Point Configuration enhances the reliability of high-voltage transmission systems, particularly in networks incorporating renewable energy sources.
The findings contribute to the development of improved fault d.

Related Results

Integration Techniques of Fault Detection and Isolation Using Interval Observers
Integration Techniques of Fault Detection and Isolation Using Interval Observers
An interval observer has been illustrated to be a suitable approach to detect and isolate faults affecting complex dynamical industrial systems. Concerning fault detection, interv...
Tansient fault analysis of a VSC-based multi-terminal HVDC scheme
Tansient fault analysis of a VSC-based multi-terminal HVDC scheme
A multiterminal HVDC system includes the connection of different HVDC terminals to a common grid. Most of the MTDC networks are realized in voltage source converter (VSC) high volt...
Introducing Optimal Energy Hub Approach in Smart Green Ports based on Machine Learning Methodology
Introducing Optimal Energy Hub Approach in Smart Green Ports based on Machine Learning Methodology
Abstract The integration of renewable energy systems in port facilities is essential for achieving sustainable and environmentally friendly operations. This paper presents ...
Decomposition and Evolution of Intracontinental Strike‐Slip Faults in Eastern Tibetan Plateau
Decomposition and Evolution of Intracontinental Strike‐Slip Faults in Eastern Tibetan Plateau
Abstract:Little attention had been paid to the intracontinental strike‐slip faults of the Tibetan Plateau. Since the discovery of the Longriba fault using re‐measured GPS data in 2...
Sustainable Energy Law: Origins and Power
Sustainable Energy Law: Origins and Power
Solar and wind renewable energy are now the fastest growing sources of new energy in the world. In the US, from 1984 to 2021, solar and wind increased by 24,691% to about 12% of cu...
Chapter 4: Displacement on the southern San Andreas fault
Chapter 4: Displacement on the southern San Andreas fault
The pre-Quaternary geology of the southern Chocolate and Cargo Muchacho mountains correlates with that exposed in San Gorgonio Pass between the Mission Creek and Banning branches o...
Late Quaternary Activity: Kouma Fault
Late Quaternary Activity: Kouma Fault
The Kouma Fault, located at the northern foot of the Mangshan Mountain in Luoyang City, Henan Province, China, is an active fault newly discovered in the field seismic geological s...

Back to Top