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Modelling of Charging
Demand for Electric Vehicle based on Person-trip Survey Data
T.
Kato, T. Matsuki, M. Imanaka, M. Kurimoto and S. Sugimoto
2019/07/15
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Abstract
In electricity distribution networks, voltage
might be dropped significantly by simultaneous charging of high penetration
Electric Vehicle (EV). The impact of EV on voltage drop can be different
among areas depending on various factors such as original electricity
demand profile without EV, EV
penetration level and usage pattern, etc. For the statistical assessment
of impact of high penetration EV in various distribution networks, this
study proposes a model to estimate time-series data of electricity demand
including EV charging. The proposed model is based on Grid Square Statistics
Data on geographical distribution of population, employee, etc. and Person-trip
Survey Data. As an example using the proposed model, this study compares
three EV charging strategies in suburban area of Nagoya, Japan. As a result,
if the EV charging starts simultaneously at 23:00 at which the night-time
discount electricity rate is applied, the night-time electricity demand
can be much larger than the day-time peak demand without EV. The increase
can be mitigated by autonomous charging control according to the time
and SOC of EV returning home in most areas. Finally, by using the calculated
electricity demand profile, this study assesses the impact of EV charging
on voltage profile. The result shows that the impact of EV charging on
distribution network voltage can be avoided by applying the proposed autonomous
charging control scheme.
| Published in: Renewable Energy
& Power Quality Journal (RE&PQJ, Nº. 17) |
| Pages: 453-458 |
Date of Publication: 2019/07/15 |
| ISSN: 2172-038X |
Date of Current Version:2019/04/10 |
| REF: 343-19 |
Issue Date: July 2019 |
| DOI:10.24084/repqj17.343 |
Publisher: EA4EPQ |
Authors and affiliations
T. Kato1, T. Matsuki2, M. Imanaka1, M. Kurimoto1 and
S. Sugimoto1
1. Institute of Materials and Systems for Sustainability
2. Department of Electrical Engineering, School of Engineering
Nagoya University. Furo-cho, Nagoya (Japan)
Key words
Electric vehicle, electricity distribution network, electricity
demand, statistical data, person-trip survey data
References
[1] T. Noda, Y. Kabasawa, K. Fukushima, Y. Nemoto, and
S. Uemura, A Method for Compensating Customer Voltage Drops due
to Nighttime Simultaneous Charging of EVs Utilizing Reactive Power
Injection from Battery Chargers, IEEJ Trans. PE, Vol.132, No.2,
pp.163-170 (2012)
[2] Z. Akhtar, B. Chaudhuri, and S. Hui, Smart Loads for Voltage
Control in Distribution Networks, IEEE Trans. on Smart Grid, Vol.8,
No.2, pp.937-946 (2017)
[3] A. T. Procopiou, J. Quiros-Tortos, and L.F. Ochoa, HPC-Based
Probabilistic Analysis of LV Networks With EVs: Impacts and Control,
IEEE Trans. on Smart Grid, Vol.8, No.3, pp.1479-1487 (2017)
[4] Q. R. Hamid, and J. A. Barria, Congestion Avoidance for Recharging
Electric Vehicles Using Smoothed Particle Hydrodynamics, IEEE Trans.
on Power Systems, Vol.31, pp.1014-1024 (2016)
[5] S. Faddel, O. A. Mohammed, Automated Distributed Electric Vehicle
Controller for Residential Demand Side Management, IEEE Transon
Industry Applications, Vol.55, pp.16-25 (2019)
[6] J. Kitayama, M. Kurimoto, T. Kato, Y. Suzuoki, "Statistical Evaluation
of Net Electricity Load in Power Distribution Substation Supply Area with
High Penetration Photovoltaic Power Generation System Case-Study
for Various Areas in Nagoya City- ", Proc.
of the 30th Conf. on Energy Economy, and environment, No.25-3, pp.475-480
(2014) (in Japanese)
[7] J. Kitayama, M. Kurimoto, T. Kato, Y. Suzuoki: Aggregated Photovoltaic
Power Output Fluctuation Characteristics in Power System Considering Power
supply Limitation in Each Power Distribution Area,Proc. of the 31st
Conf. on Energy, Economy, and Environment, No.3-3, pp.51-56 (2015) (In
Japanese)

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