In order to reduce CO2 emissions in the residential sector, the installation of photovoltaics (PV) has been increasing extensively. However, such large-scale PV installations cause problems in the low-voltage distribution grid of the residential sector, such as PV related voltage surges. In this study, the utilization of suppressed PV output through energy storage devices was proposed. Using demand side energy storage devices reduces voltage surge, transmission loss, and CO2 emissions from the residential buildings. The objective of this study was to add voltage constraints of the low-voltage distribution grid to an operational planning problem that we developed for the residential energy systems, and to quantitatively evaluate the potential of heat pump water heater (HP) to utilize the PV surplus electricity, while considering the electrical grid constraints based on the minimization of CO2 emissions. We found that when a 4.5 kW HP with 370 L storage, which utilizes PV output, was added to the system, the reduction in CO2 emissions was more than twice compared with that in the case of adding 4 kWh battery (BT) to a PV and gas fired water heater configuration. Further, the effect of utilizing the suppressed PV electricity by HP was almost equivalent to that by the BT. Therefore, the potential of HP in utilizing PV surplus electricity is higher than that of the BT in terms of CO2 emissions reduction in the residential sector.
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ASME 2017 11th International Conference on Energy Sustainability collocated with the ASME 2017 Power Conference Joint With ICOPE-17, the ASME 2017 15th International Conference on Fuel Cell Science, Engineering and Technology, and the ASME 2017 Nuclear Forum
June 26–30, 2017
Charlotte, North Carolina, USA
Conference Sponsors:
- Advanced Energy Systems Division
- Solar Energy Division
ISBN:
978-0-7918-5759-5
PROCEEDINGS PAPER
Impact of Utilizing PV Surplus Electricity on CO2 Emissions From the Residential Energy Systems
Toshiyuki Nagai,
Toshiyuki Nagai
Waseda University, Tokyo, Japan
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Akira Yoshida,
Akira Yoshida
Waseda University, Tokyo, Japan
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Yoshiharu Amano
Yoshiharu Amano
Waseda University, Tokyo, Japan
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Toshiyuki Nagai
Waseda University, Tokyo, Japan
Akira Yoshida
Waseda University, Tokyo, Japan
Yoshiharu Amano
Waseda University, Tokyo, Japan
Paper No:
ES2017-3288, V001T04A002; 9 pages
Published Online:
August 25, 2017
Citation
Nagai, T, Yoshida, A, & Amano, Y. "Impact of Utilizing PV Surplus Electricity on CO2 Emissions From the Residential Energy Systems." Proceedings of the ASME 2017 11th International Conference on Energy Sustainability collocated with the ASME 2017 Power Conference Joint With ICOPE-17, the ASME 2017 15th International Conference on Fuel Cell Science, Engineering and Technology, and the ASME 2017 Nuclear Forum. ASME 2017 11th International Conference on Energy Sustainability. Charlotte, North Carolina, USA. June 26–30, 2017. V001T04A002. ASME. https://doi.org/10.1115/ES2017-3288
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