4.7 Article

Day-ahead scheduling strategy for integrated heating and power system with high wind power penetration and integrated demand response: A hybrid stochastic/interval approach

Journal

ENERGY
Volume 253, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.energy.2022.124189

Keywords

IHPS; IGDT; Stochastic optimization; Wind energy; Uncertainty

Funding

  1. National Natural Science Founda-tion of China [U1908213]
  2. Colleges and Universities in Hebei Province Science Research Program [QN2020504]
  3. Fundamental Research Funds for the Central Universities [N2223001]

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A novel hybrid optimization method for the day ahead scheduling of an integrated heating and power system is proposed in this paper. The method addresses the uncertainties on both the supply and demand sides using scenario-based stochastic analysis and the information gap decision theory. The heating system is utilized as a virtual storage for managing wind power dispatch. The concept of price-based integrated demand response is introduced to enhance the system economic.
The accommodation of wind energy is restricted due to the heat-led operation mode of CHP units. Comprehensive utilization of multi-energy coordinated supply and integration of wind energy, is deemed as an efficient solution for improving energy conservation and operational flexibility. Therefore, a novel hybrid stochastic/interval optimization for an integrated heating and power system (IHPS) day ahead scheduling is proposed in this paper. Considering the bilateral uncertainties that exist on both sides of supply and demand, the scenario-based stochastic analyze is adopted to generate a set of possible scenarios for describing uncertainties of electrical and thermal loads. Also, the information gap decision theory (IGDT) is proposed to deal with the severe uncertainty caused by high wind power penetration. For the operation of district heating network (DHN), temperature dynamics and transmission delay are studied to exploit the heating system as a virtual storage for managing the dispatch of wind power. To further improve the system economic, the concept of price-based integrated demand response (IDR) under the background of multi-energy coupling is also introduced and the characteristics of energy substitution and load timing transfer are modeled. Simulation results show that the benefits of the proposed method for enhancing the system operation flexibility.(c) 2022 Elsevier Ltd. All rights reserved.

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