A Comparative Study of Time-Evolution Characteristics of Single and Double Cavity Partial Discharges
Abstract
:1. Introduction
2. The Evolutionary Nature of Partial Discharges: A Review of Existing Knowledge
3. Experimental Design
PD Test Cell Setup
4. Results Analysis and Discussion
Single and Double Cavities’ Time Evolution
- is the fundamental phonon frequency.
- Φ is the effective work function for detrapping.
- is the Schottky term.
- K is the Boltzman constant.
- T is the absolute temperature
- Ndt accounts for the number of detrappable electrons.
- ζ < 1 is a dimensionless factor for detrappable electrons that accounts for the difference in efficiency when the surface is impacted by a positive ion (normal condition) or an electron (polarity reversed).
- q is the true PD charge.
- e is the elementary charge
- t is the time interval since the previous discharge event
- is the effective decay time constant.
5. Conclusions
- This work confirmed the existing knowledge that PD phase-resolved patterns of air-filled cavity defects in polymer materials evolve through distinct stages as the PD activity progresses from inception to complete failure.
- The overall shapes of PD phase-resolved patterns of single cavities and those of closely coupled cavities evolve in a similar way and are therefore difficult to distinguish. This is because the same PD mechanisms are present in both double and single cavities. This is not surprising as the physics of the PD discharge does not depend on the configuration of the cavities.
- By using a suitable PD simulation model and a curve-fitting approach in reproducing physically measured PD patterns, the dominant variables responsible for time-dependent PD pattern evolution changes were identified.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Kyere, I.K.; Nyamupangedengu, C.; Swanson, A.G. A Comparative Study of Time-Evolution Characteristics of Single and Double Cavity Partial Discharges. Energies 2024, 17, 1905. https://doi.org/10.3390/en17081905
Kyere IK, Nyamupangedengu C, Swanson AG. A Comparative Study of Time-Evolution Characteristics of Single and Double Cavity Partial Discharges. Energies. 2024; 17(8):1905. https://doi.org/10.3390/en17081905
Chicago/Turabian StyleKyere, Isaac Kwabena, Cuthbert Nyamupangedengu, and Andrew Graham Swanson. 2024. "A Comparative Study of Time-Evolution Characteristics of Single and Double Cavity Partial Discharges" Energies 17, no. 8: 1905. https://doi.org/10.3390/en17081905
APA StyleKyere, I. K., Nyamupangedengu, C., & Swanson, A. G. (2024). A Comparative Study of Time-Evolution Characteristics of Single and Double Cavity Partial Discharges. Energies, 17(8), 1905. https://doi.org/10.3390/en17081905