Energy Storage Science and Technology ›› 2025, Vol. 14 ›› Issue (11): 4245-4253.doi: 10.19799/j.cnki.2095-4239.2025.0511

• Energy Storage System and Engineering • Previous Articles     Next Articles

Dynamic performance analysis of a Carnot battery-based combined cooling, heating, and power system under variable operating conditions

Jiaxing HUANG1(), Yao ZHAO1,2(), Puliang DU3, Peifeng SUN4, Jiyu LI5   

  1. 1.College of Smart Energy, Shanghai Jiao Tong University, Shanghai 200240, China
    2.Shanghai Institute of Non-carbon-based Energy Conversion and Utilisation, Shanghai Jiao Tong University, Shanghai 200240, China
    3.College of Economics and Management, Shanghai University of Electric Power, Shanghai 201306, China
    4.Energy Science and Technology Research Institute, State Power Investment Corporation, Shanghai 200240, China
    5.State Grid Fujian Power Economic Research Institute, Fuzhou 350013, Fujian, China
  • Received:2025-05-30 Revised:2025-06-14 Online:2025-11-28 Published:2025-11-24
  • Contact: Yao ZHAO E-mail:huangjiaxing@sjtu.edu.cn;zhaoyao@sjtu.edu.cn

Abstract:

Carnot batteries are anticipated to evolve into combined cooling, heating, and power (CCHP) systems based on their thermo-electric conversion principle. When integrated with cascaded latent heat and cold storage technologies, these systems can flexibly supply electricity together with multigrade heat and cold. Given the time-varying nature of renewable energy inputs and load demands, analyzing dynamic response characteristics is essential to overcome technical barriers and support large-scale deployment. This study develops a dynamic model of a Carnot battery-based CCHP system incorporating cascaded latent heat and cold storage. The model evaluates the system's multienergy coordinated response under disturbances in electrical and heating/cooling power outputs, and examines the dynamic evolution of outlet temperatures and pressures, working fluid mass flow rates, and compressor/expander rotational speeds. Results show that cascaded latent heat and cold storage units provide strong thermal buffering, effectively smoothing outlet temperature fluctuations caused by changes in working fluid flow rate. Consequently, heating/cooling power outputs—primarily governed by working fluid flow rate—respond more rapidly than electrical power. The system also demonstrates robust resistance to multi-energy disturbances, with electrical and thermal/cooling power fluctuations being independent, thus enabling stable co-generation. Moreover, compressor/expander speed and mass flow rate are positively correlated with power input during charging: a 5% decrease in electrical input reduces them by 0.8% and 2.7%, respectively. Conversely, during discharging, they are negatively correlated with load fluctuations: a 5% reduction in load increases them by 1.4% and 4.5%, respectively. These findings provide valuable insights for the development of advanced control strategies.

Key words: Carnot battery, cascaded latent heat/cold storage, dynamic performance, combined cooling, heating, and power

CLC Number: