Figure 21: Dependence of the amplitude of the magnetic field strength on the x coordinate.
5 CONCLUSIONS
We proposed a technique that helps adequately
model and simulate double electric two wires and
earth lines. We considered the original designs of
TWE cable lines that can be implemented when the
use of overhead ETLs is limited. Such situations are
typical for some settlements, sites of industrial
enterprises, as well as for areas with high wind
loads. In addition, the use of cable TWE lines may
be appropriate for the transmission of electricity by
submarine cables to facilities located on the islands
of rivers, lakes, and seas.
ACKNOWLEDGEMENTS
The research was carried out within the state
assignment of Ministry of Science and Higher
Education of the Russian Federation (project code:
FZZS-2020-0039).
REFERENCES
Helwig, A., Ahfock, T., 2013. Extending SWER line
capacity, Australasian Universities Power
Engineering Conference (AUPEC), 1-6.
Wolfs, P. J., 2005. Capacity improvements for rural single
wire earth return systems, International Power
Engineering Conference, 1-306.
Wolfs, P.J., Hosseinzadeh, N., Senini, S.T., 2007.
Capacity Enhancement for Aging Distribution
Systems using Single Wire Earth Return, IEEE Power
Engineering Society General Meeting, 1-8.
Kavi, M., Mishra, Y., Vilathgamuwa, D.M., 2016.
Detection and identification of high impedance faults
in single wire earth return distribution networks,
Australasian Universities Power Engineering
Conference (AUPEC), 1-6.
Brooking, T.R., Janse van Rensburg, N., Fourie, R., 1992.
The improved utilisation of existing rural networks
with the use of intermediate voltage and single wire
earth return systems, 3D Africon Conference. 228-234.
Bakkabulindi, G., Hesamzadeh, M. R., Amelin, M., Da
Silva, I.P., 2013. Models for conductor size selection
in Single Wire Earth Return distribution networks,
2013 Africon, 1-5.
Kashem, M.A., Ledwich G., 2004. Distributed generation
as Voltage support for single wire Earth return
systems, IEEE Transactions on Power Delivery, 19
(3), 1002–1011.
Ledwich, G, 2004. Distributed generation as voltage
support for single wire earth return systems, IEEE
Power Engineering Society General Meeting.
Nkom, B., Baguley, C., Nair, Nirmal-Kumar C., 2019. Single
Wire Earth Return Distribution Grids: A Panacea for
Rapid Rural Power Penetration in Africa via Regulatory
Policy Transfer, IEEE PES/IAS PowerAfrica.
Nkom, B., Taylor, A.P.R., Baguley, C., 2018. Narrowband
Modeling of Single-Wire Earth Return Distribution
Lines, IEEE Transactions on Power Delivery, 33 (4),
1565-1575.
Andreev, V.V., 1952. Four-phase power transmission
scheme with three-phase transformers, Electricity, 1,
15-17.
Filshtinsky, A.A., 1952. Four-wire power transmission as
a means of improving the efficiency and reliability of
high-voltage networks, Electricity, 1, 17-22.
Buryanina, N.S., Korolyuk, Yu.F., Lesnykh, E.V., Maleeva,
E.I., 2018. Power lines with a reduced number of wires in
mountainous areas, Sustainable Development of
Mountainous Territories, 10, 3(37), 404-410.
Vorotnitskiy, V.E., 2019. Digitalization in the economy
and electric power industry, Energetik, 12, 6-14.
Zakaryukin, V.P., Kryukov, A.V., 2005. Difficult
asymmetric modes of electrical systems. Irkutsk.
Buyakova, N., Zaharukin, V., Kryukov, A., 2018.
Imitative Modelling of Electromagnetic Safety
Conditions in Smart Power Supply Systems, Advances
in Intelligent Systems Research, 158. 20-25.
Buyakova, N.V., Kryukov, A.V., Le Van Thao, 2019.
Integrated modeling of compact power lines,
International Scientific and Technical Conference
Smart Energy Systems.