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Soil Resistivity: A Limiting Determinant to
Zero-Sequence Currents for Grounded Conductors in South African
Low Voltage Networks
Q. Louw and P. Bokoro
2017/04/25
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Abstrac
In this paper, the dependence of soil resistivity
on the geological structure and meteorological conditions are discussed.
The South African context of changing resistivity and its inevitable consequences
on the behaviour of prospective zero-sequence currents in low-voltage
distribution systems is highlighted. Therefore, field measurements of
soil resistivity using the Wenner Array technique is conducted on expansive
clay-based soil. The resulting zero-sequence current inherent to the soil
conditions is also assessed. The results obtained indicated that the soil
resistivity value of 488.74 Ù. m, which corresponds to the soil
conditions at the time and measurement season, represents an increase
of 62.91% of the standard limit value for expansive clays, and causes
37.14% decrease in the zero-sequence current likely to flow at the limit
value of expansive clays resistivity.
| Published in: Renewable Energy
& Power Quality Journal (RE&PQJ, Nº. 15) |
| Pages: 356-359 |
Date of Publication: 2017/04/25 |
| ISSN: 2172-038X |
Date of Current Version: |
| REF: 318-17 |
Issue Date: April 2017 |
| DOI:10.24084/repqj15.318 |
Publisher: EA4EPQ |
Authors and affiliations
Q. Louw and P. Bokoro
Department of Electrical and Electronic Engineering Technology. University
of Johannesburg. Doornfontein Campus Johannesburg (South Africa)
Key word
Soil resistivity, zero-sequence current, grounded conductor,
soil resistance.
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