4.6 Article

Operation of a Technical Virtual Power Plant Considering Diverse Distributed Energy Resources

期刊

IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS
卷 58, 期 2, 页码 2547-2558

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TIA.2022.3143479

关键词

Costs; Load modeling; HVAC; Reactive power; Schedules; Renewable energy sources; Virtual power plants; Consumer comfort; demand response (DR); electric vehicles (EVs); flexibility services; heating ventilation and air conditioning (HVAC); virtual power plant (VPP)

资金

  1. FEDER funds through COMPETE 2020
  2. Portuguese funds through FCT [POCI-01-0145-FEDER-029803 (02/SAICT/2017)]
  3. FCT Ph.D. Scholarship [UI/BD/152279/2021]
  4. FCT, Fundacao para a Ciencia e a Tecnologia [UIDB/50021/2020]
  5. Fundação para a Ciência e a Tecnologia [UI/BD/152279/2021] Funding Source: FCT

向作者/读者索取更多资源

This article develops a technical Virtual Power Plant (TVPP) operational model to optimize the scheduling of diverse Distributed Energy Resources (DERs), considering the constraints of the power grid management. The results show that electric vehicles and solar photovoltaic units provide the largest benefits to the TVPP, and the operation of the TVPP improves financial metrics, increases consumer engagement, and enhances technical operational metrics.
Virtual power plants (VPPs) have emerged as a way to coordinate and control the growing number of distributed energy resources (DERs) within power systems. Typically, VPP models have focused on financial or commercial outcomes and have not considered the technical constraints of the distribution system. The objective of this article is the development of a technical VPP (TVPP) operational model to optimize the scheduling of a diverse set of DERs operating in a day-ahead energy market, considering grid management constraints. The effects on network congestion, voltage profiles, and power losses are presented and analyzed. In addition, the thermal comfort of the consumers is considered and the tradeoffs between comfort, cost, and technical constraints are presented. The model quantifies and allocates the benefits of the DER operation to the owners in a fair and efficient manner using the Vickrey-Clarke-Grove mechanism. This article develops a stochastic mixed-integer linear programming model and various case studies are thoroughly examined on the IEEE 119 bus test system. Results indicate that electric vehicles provide the largest marginal contribution to the TVPP, closely followed by solar photovoltaic (PV) units. Also, the results show that the operations of the TVPP improve financial metrics and increase consumer engagement while improving numerous technical operational metrics. The proposed TVPP model is shown to improve the ability of the system to incorporate DERs, including those from commercial buildings.

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