open access publication

Article, 2024

Collaborative optimization model of industrial high‐energy consumption park under green and low‐carbon transformation

Electronics Letters, ISSN 1350-911X, 0013-5194, Volume 60, 9, 10.1049/ell2.13187

Contributors

Ma, Shaohua 0000-0002-6335-5285 (Corresponding author) [1] Wang, Qiwei [1] Nie, Tong [1] Chen, Zhe [2] Teng, Yun [1]

Affiliations

  1. [1] Shenyang University of Technology
  2. [NORA names: China; Asia, East];
  3. [2] Aalborg University
  4. [NORA names: AAU Aalborg University; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

Abstract Under the background of green and low‐carbon transformation of industrial high‐energy‐consuming parks, in order to realize the coordinated development planning of energy and transportation under different peaking capacity requirements, this paper proposes a collaborative optimization model of industrial high‐energy‐consuming parks under green and low‐carbon. Firstly, by studying the energy balance mechanism between industrial load and new energy, an energy topology prior model of energy interaction in the next generation of industrial new energy power grid is constructed. Then, based on the probability characteristics of the equilibrium state of different regions in the high‐energy‐consuming industrial zone, combined with the prior knowledge of industrial load and low‐carbon power system, a collaborative development planning model of high‐energy‐consuming industrial parks is constructed. Finally, the proposed model is simulated. From the simulation results the authors can see the dynamic division model and solution algorithm of energy balance region established in this paper can effectively improve the energy balance ability of power grid, reduce peak shaving demand and use more renewable energy.

Keywords

Abstract, Park, ability, authors, background, balance ability, balance region, balancing mechanism, capacity, capacity requirements, characteristics, collaborative optimization model, demand, division model, energy, energy balance mechanism, energy interactions, energy power grid, equilibrium, equilibrium state, grid, industrial loads, industrial parks, industrial zones, interaction, knowledge, load, low-carbon, low-carbon transformation, mechanism, model, next generation, peak, peak shaving demand, planning of energy, power, power grid, prior models, probability, probability characteristics, region, renewable energy, requirements, simulation, solution, solution algorithm, state, transformation, transport, zone

Funders

  • Ministry of Science and Technology of the People's Republic of China

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