Environmental assessment of prosumer digitalization: The case of virtual pooling of PV battery storage systems

被引:6
|
作者
Bluhm, Hannes [1 ,2 ]
Gaehrs, Swantje [1 ]
机构
[1] Inst Ecol Econ Res, Potsdamer Str 105, D-10785 Berlin, Germany
[2] Europa Univ Flensburg, Campus 1, D-24943 Flensburg, Germany
关键词
Virtual battery energy storage systems; Energy system services; Digitalization; Life cycle assessment; COMMUNITY ENERGY-STORAGE; RENEWABLE ENERGY; POWER-PLANTS; IMPACTS; MARKET;
D O I
10.1016/j.est.2022.106487
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The emergence of decentralized renewable energies together with digitalization enable new possibilities for the provision of system services that are needed for the energy transition. In Germany and worldwide, prosumers with a PV battery storage system are on the rise. With the aid of digital information and communication tech-nologies (ICT), energy service providers can pool individual battery storage units to form a virtual battery energy storage system (VBES). The VBES is supposed to provide flexibility services and, thereby, support the transition towards an energy system with high shares of intermittent renewables. Although the concept is environmentally motivated, a holistic environmental assessment is missing so far. Therefore, we carry out a life-cycle analysis that considers environmental benefits, as well as burdens of VBES. For this, we compare a PV battery storage unit in a German single-family household with and without participation in a VBES for the year 2018. We assess three levels of environmental effects: direct effects due to digitalization (data transfer, ICT resources for VBES oper-ation), indirect effects from external optimization on the household-level (changes in battery life and power supply), and enablement effects on the system level (provision of Frequency Containment Reserve, redispatch, and preventing renewables curtailment). We find that digitalization has a comparably low direct impact but it can enable relatively high environmental benefits for climate protection, and in other impact categories. Con-ditions for our findings are that battery life and the household's degree of self-sufficiency with PV electricity are not significantly affected by the external control of the VBES operator. We conclude that current and future battery owners should be encouraged to allow external access for system services. Furthermore, the necessary ICT roll out should be implemented in the short-to mid-term.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] Effects of Electricity Tariffs on Optimal Battery Energy Storage Sizing in Residential PV/Storage Systems
    Gitizadeh, Mohsen
    Fakharzadegan, Hamid
    2013 INTERNATIONAL CONFERENCE ON ENERGY EFFICIENT TECHNOLOGIES FOR SUSTAINABILITY (ICEETS), 2013,
  • [32] Environmental impacts of microgeneration: Integrating solar PV, Stirling engine CHP and battery storage
    Balcombe, Paul
    Rigby, Dan
    Azapagic, Adisa
    APPLIED ENERGY, 2015, 139 : 245 - 259
  • [33] A New Control Strategy for Interfacing Battery Supercapacitor Storage Systems for PV System
    Kollimalla, Sathish Kumar
    Mishra, Mahesh Kumar
    Narasamma, Lakshmi N.
    2014 IEEE STUDENTS' CONFERENCE ON ELECTRICAL, ELECTRONICS AND COMPUTER SCIENCE (SCEECS), 2014,
  • [34] Power Fluctuation Suppression in Energy Storage for PV-Battery GFM Systems
    Yin, Kai
    Peng, Yinzhang
    Zhang, Lu
    Zhao, Qi
    Yang, Yongheng
    IEEE 15TH INTERNATIONAL SYMPOSIUM ON POWER ELECTRONICS FOR DISTRIBUTED GENERATION SYSTEMS, PEDG 2024, 2024,
  • [35] Design of UPQC with Solar PV and Battery Storage Systems for Power Quality Improvement
    Srilakshmi, Koganti
    Jyothi, K. Krishna
    Kalyani, G.
    Goud, Y. Sai Prakash
    CYBERNETICS AND SYSTEMS, 2023,
  • [36] Optimal Management of an Energy Community with PV and Battery-Energy-Storage Systems
    Aranzabal, Itxaso
    Gomez-Cornejo, Julen
    Lopez, Iraide
    Zubiria, Ander
    Mazon, Javier
    Feijoo-Arostegui, Ane
    Gaztanaga, Haizea
    ENERGIES, 2023, 16 (02)
  • [37] Minimizing Energy Cost in PV Battery Storage Systems Using Reinforcement Learning
    Haertel, Florus
    Bocklisch, Thilo
    IEEE ACCESS, 2023, 11 : 39855 - 39865
  • [38] Energy class dependent residential battery storage sizing for PV systems in Cyprus
    Afxentis, Stavros
    Florides, Michalis
    Machamint, Vasilis
    Yianni, Christos
    Norgaard, Per
    Bindner, Hendrik
    Kathan, Johannes
    Brunner, Helfried
    Mayr, Christoph
    Anastassiou, Charalambos
    Efthymiou, Venizelos
    Georghiou, George Elia
    JOURNAL OF ENGINEERING-JOE, 2019, (18): : 4770 - 4774
  • [39] Analysis of Partial Load Loss of the PCS and Internal Storage Battery Loss in Residential PV Power Generation and Storage Battery Systems
    Yamada M.
    Nishio K.-I.
    IEEJ Transactions on Power and Energy, 2024, 144 (02): : 139 - 147
  • [40] Analysis of partial load loss of the PCS and internal storage battery loss in residential PV power generation and storage battery systems
    Yamada, Manaka
    Nishio, Ken-Ichiro
    ELECTRONICS AND COMMUNICATIONS IN JAPAN, 2024, 107 (02)