This project has considered irradiation data for
Hanoi and calculated the PV generation for rooftop
and facade installations for an exemplary commercial
building. An energy management concept is
developed after modelling of the generating units
such as a stationary battery, EV battery and the
cooling system as thermal storage. Actual load values
are considered for the calculations of the EMS.
Further steps in the project are: a) further
development of the EMS for the assessment of the
self- consumption behaviour, b) analysis of the
resulting electricity costs after implementing such an
EMS using time-of-use pricing mechanism and c)
development of voltage control strategies for the
Vietnamese distribution grid with high PV
penetration through modelling of the grid and
implementation of control.
ACKNOWLEDGEMENT
We acknowledge the support by the project “Reactive
Power Control 2” (FKZ 0350003A) funded by the
German Ministry of Economic Affairs and Energy
(BMWi) and the project “PV Vietnam” (FKZ
01DP19002) funded by the German Ministry of
Education and Research (BMBF). Only the authors
are responsible for the content of the publication.
REFERENCES
Axaopoulos, P. J. (2011). Basic principles of solar
geometry. Solar thermal conversion. Simmetria,
Athens, Greece.
Bot, K., Aelenei, L., Gomes, M. da G., & Santos Silva, C.
(2020). Performance Assessment of a Building
Integrated Photovoltaic Thermal System in
Mediterranean Climate—A Numerical Simulation
Approach. Energies, 13(11), 2887.
doi:10.3390/en13112887
BMWi (Federal Ministry for Economic Affairs and
Energy). (2019). Erneuerbare Energien. Retrieved
from: https://www.bmwi.de/Redaktion/DE/Dossier/
erneuerbare-energien.html
BSW Solar. (2021). Statistische Zahlen der deutschen
Solarstrombranche (Photovoltaik). Berlin, Germany.
Retrieved from: https://www.solarwirtschaft.de/
datawall/uploads/2021/02/BSW_Faktenblatt_Photovol
taik_Update_2020-1.pdf (in German)
BSW Solar. (2021 (2)). Statistische Zahlen der deutschen
Solarstrombranche (Speicher/ Mobilität). Berlin,
Germany. Retrieved from: https://
www.solarwirtschaft.de/datawall/uploads/2021/02/BS
W_Faktenblatt_Stromspeicher_Update_2020.pdf (in
German)
Brito, M.C., Freitas, S., Guimarães, S., Catita, C., &
Redweik, P. (2017). The importance of facades for the
solar PV potential of a Mediterranean city using LiDAR
data. Renewable Energy, 111, 85-94. doi:
10.1016/j.renene.2017.03.085
Do, T. N., Burke, P. J., Nguyen, H. N., Overland, I.,
Suryadi, B., Swandaru, A., & Yurnaidi, Z. (2021).
Vietnam's solar and wind power success: Policy
implications for the other ASEAN countries. Energy for
Sustainable Development, 65, 1-11. doi:
10.1016/j.esd.2021.09.002
Electrical Power University. (2016). NHD-DTTBCT
2016.Summary Report of the Results of Science Theme
Ministry of Industry and Trade. Retrieved from:
https://en.epu.edu.vn/ (in Vietnamese)
Ershad, A. M., Pietzcker, R., Ueckerdt, F., & Luderer, G.
(2020). Managing Power Demand from Air
Conditioning Benefits Solar PV in India Scenarios for
2040. Energies, 13(9), 2223. doi: 10.3390/en13092223
EVN Hanoi. (2021). Rooftop PV systems. Retrieved from:
https://evnhanoi.vn/cskh/thong-tin-dien-mat-troi (in
Vietnamese)
Fraunhofer CINES. (2020). 13 Thesen zur Energiewende in
Deutschland. Retrieved from: https://www.ise.
fraunhofer.de/de/presse-und-medien/
presseinformationen/2020/fraunhofer-cines-erarbeitet-
13-thesen-zur-energiewende-in-deutschland.html (in
German)
Geibel, D., Degner, T., Seibel, A., Bülo, T., Tschendel, C.,
Pfalzgraf, M., Boldt, K., Müller, P., Sutter, F., & Hug,
T. (2013). Active, intelligent low voltage networks-
Concept, realisation and field test results. doi:
10.1049/cp.2013.0947
Huang, B.J., Hsu, P.C., Wang, Y.H., Tang, T.C., Wang,
J.W., Dong, X.H., Lee, M.J., Yeh, J.F., Dong, Z.M.,
Wu, M.H., Sia, S.J., Li, K., & Lee, K.Y. (2019).
Development of solar home system with dual energy
storage. SN Applied Science, 1(9), 1-10. doi:
10.1007/s42452-019-1000-8
IEA. (2018). The Future of Cooling - Opportunities for
energy efficient air conditioning. Retrieved from:
https://www.iea.org/reports/the-future-of-cooling
Lavalliere, J.M., Abdelsalam, H.A., & Makram, E.B.
(2015). Impact of PV on peak load shaving on an actual
distribution system. Proceedings of the 2015 North
American Power Symposium. doi:
10.1109/NAPS.2015.7335142
Lam, L. H., Ky, H. V. M., Hieu, T. T., & Hieu, N. H. (2021).
Potential and Barriers to the Evolution of Rooftop Solar
in Central VietNam. 2021 IEEE Madrid PowerTech, 1-
6. doi: 10.1109/PowerTech46648.2021.9494826
Li, C., Disfani, V. R., Pecenak, Z. K., Mohajeryami, S., &
Kleissl, J. (2018). Optimal OLTC voltage control
scheme to enable high solar penetrations. Electric
Power Systems Research, 160, 318-326. doi:
10.1016/j.epsr.2018.02.016
Luthander, R., Widén, J., Nilsson, D., & Palm, J. (2015).
Photovoltaic self-consumption in buildings: A review.
Applied energy, 142, 80-94. doi:
10.1016/j.apenergy.2014.12.028