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Analysis of Precision Regulation Pathways for Thermal Substation Supply–Demand Balance

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  • Jiaxiang Yin

    (School of Energy and Environment Engineering, Hebei University of Technology, Tianjin 300401, China)

  • Pengpeng Zhao

    (School of Energy and Environment Engineering, Hebei University of Technology, Tianjin 300401, China)

  • Jinda Wang

    (School of Energy and Environment Engineering, Hebei University of Technology, Tianjin 300401, China)

Abstract

Under the dual imperatives of air pollution control and energy conservation, this study proposes an enhanced optimization framework for combined heat and power (CHP) district heating systems based on bypass thermal storage (BTS). In contrast to conventional centralized tank-based approaches, this method leverages the dynamic hydraulic characteristics of secondary network bypass pipelines to achieve direct sensible heat storage in circulating water, significantly improving system flexibility and energy efficiency. The core innovation lies in addressing the critical yet under-explored issue of control valve dynamic response, which profoundly impacts system operational stability and economic performance. A quality regulation strategy is systematically implemented to stabilize circulation flow rates through temperature modulation by establishing a supply–demand equilibrium model under bypass conditions. To overcome the limitations of traditional feedback control in handling hydraulic transients and heat transfer dynamics in the plate heat exchanger, a Model Predictive Control (MPC) framework is developed, integrating a data-driven valve impedance-opening degree correlation model. This model is rigorously validated against four flow characteristics (linear, equal percentage, quick-opening, and parabolic) and critical impedance parameters (maximum/minimum controllable impedance). This study provides theoretical foundations and technical guidance for optimizing secondary network heating systems, enhancing overall system performance and stability, and promoting energy-efficient development in the heating sector.

Suggested Citation

  • Jiaxiang Yin & Pengpeng Zhao & Jinda Wang, 2025. "Analysis of Precision Regulation Pathways for Thermal Substation Supply–Demand Balance," Energies, MDPI, vol. 18(11), pages 1-21, May.
  • Handle: RePEc:gam:jeners:v:18:y:2025:i:11:p:2691-:d:1662113
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    References listed on IDEAS

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    1. Wang, Liyuan & Zhang, Shunqi & Fu, Yue & Liu, Ming & Liu, Jiping & Yan, Junjie, 2024. "Heat–power decoupling for the CHP unit by utilizing heat storage in the district heating system integrated with heat pumps: Dynamic modeling and performance analysis," Energy, Elsevier, vol. 306(C).
    2. Wang, Haichao & Yin, Wusong & Abdollahi, Elnaz & Lahdelma, Risto & Jiao, Wenling, 2015. "Modelling and optimization of CHP based district heating system with renewable energy production and energy storage," Applied Energy, Elsevier, vol. 159(C), pages 401-421.
    3. Knudsen, Brage Rugstad & Rohde, Daniel & Kauko, Hanne, 2021. "Thermal energy storage sizing for industrial waste-heat utilization in district heating: A model predictive control approach," Energy, Elsevier, vol. 234(C).
    4. Wang, Jinda & Pan, Baoqiang & Rong, Lan & Sun, Chunhua & Qi, Chengying, 2024. "Topology reconstruction of the district heating network for maximizing comprehensive benefits of thermal storage," Energy, Elsevier, vol. 313(C).
    5. Benalcazar, Pablo, 2021. "Optimal sizing of thermal energy storage systems for CHP plants considering specific investment costs: A case study," Energy, Elsevier, vol. 234(C).
    6. Bordin, Chiara & Gordini, Angelo & Vigo, Daniele, 2016. "An optimization approach for district heating strategic network design," European Journal of Operational Research, Elsevier, vol. 252(1), pages 296-307.
    7. Zheng, Xuejing & Shi, Zhiyuan & Wang, Yaran & Zhang, Huan & Tang, Zhiyun, 2024. "Digital twin modeling for district heating network based on hydraulic resistance identification and heat load prediction," Energy, Elsevier, vol. 288(C).
    8. Vivian, Jacopo & Quaggiotto, Davide & Zarrella, Angelo, 2020. "Increasing the energy flexibility of existing district heating networks through flow rate variations," Applied Energy, Elsevier, vol. 275(C).
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