Abstract

Penetration level of solar photovoltaic (PV) energy in the utility network is steadily increasing. This changes the fault level and causes protection problems. Furthermore, multi-tapped structure of distribution network deployed to integrate solar PV energy to the grid and supplying loads at the same time also raised the protection challenges. Hence, this manuscript is aimed at introducing an algorithm to identify and classify the faults incident on the network of utilities where penetration level of the solar PV energy is high. This fault recognition algorithm is implemented in four steps: (1) calculation of Stockwell transform-based fault index (STFI) (2) calculation of Wigner distribution function-based fault index (WDFI) (3) calculation of combined fault index (CFI) by multiplying STFI and WDFI (4) calculation of index for ground fault (IGF) used to recognize the involvement of ground in a fault event. The STFI has the merits that its performance is least affected by the noise associated with the current signals and it is effective in identification of the waveform distortions. The WDFI employs energy density of the current signals for estimation of the faults and takes care of the current magnitude. Hence, CFI has the merit that it considers the current magnitude as well as waveform distortion for recognition of the faults. The classification of faults is achieved using the number of faulty phases. An index for ground fault (IGF) based on currents of zero sequence is proposed to classify the two phase faults with and without the ground engagement. Investigated faults include phase to ground, two phases fault without involving ground, two phases fault involving ground and three phase fault. Fault recognition algorithm is tested for fault recognition with the presence of noise, various angles of fault incidence, different impedances involved during faulty event, hybrid lines consisting of overhead line (OHL) and underground cable (UGC) sections, and location of faults on all nodes of the test grid. Fault recognition algorithm is also tested to discriminate the transients due to switching operations of feeders, loads and capacitor banks from the faulty transients. Performance of the fault recognition algorithm is compared with the algorithms based on discrete wavelet transform (DWT), Stockwell transform (ST) and hybrid combination of alienation coefficient and Wigner distribution function (WDF). Effectiveness of the fault recognition algorithm is established using a detailed study on the IEEE-13 nodes test feeder modified to incorporate solar PV plant of capacity 1 MW in MATLAB/Simulink. Algorithm is also validated on practical utility grid of Rajasthan State of India.

Highlights

  • Penetration level of renewable energy (RE) in the power network of utilities is continuously increasing and expected to be 20% by 2022 [1,2]

  • Algorithm is so robust that its performance is least affected by the noise and effective to recognize faults with various angles of fault incidence, different impedances involved during faulty event, hybrid lines with overhead line (OHL) and underground cable (UGC) sections, and location of faults on all nodes of the test grid

  • The Wigner distribution function-based fault index (WDFI) and Stockwell transform-based fault index (STFI) will not always be effective to recognize faulty events with various angles of fault incidence, different impedances involved during faulty event, hybrid lines with OHL

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Summary

A Hybrid Fault Recognition Algorithm Using

Atul Kulshrestha 1 , Om Prakash Mahela 2, * , Mukesh Kumar Gupta 1 , Neeraj Gupta 3 , Nilesh Patel 3 , Tomonobu Senjyu 4, * , Mir Sayed Shah Danish 4 and Mahdi Khosravy 5, *. Power System Planning Division, Rajasthan Rajya Vidhyut Prasaran Nigam Ltd., Jaipur 302005, India. Media Integrated Communication Laboratory, Graduate School of Engineering, Osaka University, Osaka 565-0871, Japan

Introduction
Proposed Fault Recognition Algorithm
Stockwell Transform-Based Fault Index
Wigner Distribution Fault Index
Combined Fault Index
Index for Ground Fault
Proposed Test System
Fault Between Phase A and Ground
Fault Between Phase A and Phase B
Fault Between Phases A and B to Ground
Fault Involving all the Phases and Ground
Classification of Faulty Events
Case Studies
Faulty Events with Different Fault Impedance
Faulty Event at Different Locations of Test Network
Faulty Events with Different Angles of Fault Incidence
Performance of Protection Algorithm in the Noisy Environment
Feeder Operation
Capacitor Bank Operation
Operation of Load Switching
Validation of Fault Recognition Protection Algorithm
Application to Practical Large Size Power System
Performance Comparison
Findings
Conclusions
Full Text
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