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February 12, 2026Frontiers in Energy Research3 citationsOpen Access

Exploring the potential of a novel segmented concept of real-scale open sorption storage via CFD modeling and performance evaluation

EAElham AbohamzehDTDanjana TheisGFGeorg Frey

Key Points

  • This research aims to explore a new segmented concept for sorption heat storage and evaluate its performance through numerical simulations.
  • Developed a segmented reactor concept for an open sorption storage system.
  • Performed numerical simulations of the reactor using zeolite 13XBF under different operating conditions.
  • Evaluated performance based on energy density, pressure drops, and temperature outputs.
  • Achieved energy density ranging from 115.6 kWh/m3 to 144 kWh/m3 based on boundary conditions.
  • Observed pressure drops between 71 Pa and 203 Pa for varying mass flow rates.
  • Increased vapor pressure significantly enhanced useful energy from 23.9 MJ to 29.8 MJ and energy density from 115.6 kWh/m3 to 143.3 kWh/m3.
  • Geometric alterations improved flow uniformity and extended high-temperature discharge time by approximately 22%.

Abstract

Sorption heat storage enables high-density, low-loss thermal energy storage from summer to winter through reversible adsorption–desorption, offering strong potential for both short-term and seasonal solar heating in residential applications. In this work, a novel segmented reactor concept is developed for an open sorption heat storage system, enabling flexible configuration and scalable capacity. A numerical simulation is developed and the performance of the designed module containing zeolite 13XBF is comprehensively evaluated with simulations under various operating conditions and performance indicators. Numerical results indicate an energy density of approximately 115.6–144 kWh/m 3 , depending on the boundary conditions for the proposed reactor, mostly affected by the relative humidity of incoming air. Furthermore, the segmented design yields exceptionally low pressure drops in the bed, ranging from 71 Pa to 203 Pa for mass flow rates between 50 kg/h and 120 kg/h, thereby reducing fan power requirements. Detailed simulations reveal that increasing the relative humidity of the incoming airflow and reducing the initial and inlet temperature under constant partial pressure contribute to higher output temperature, power, and energy density. Raising the inlet vapor pressure from 5 mbar to 25 mbar increased the useful energy from 23.9 MJ to 29.8 MJ, and energy density from 115.6 kWh/m 3 to 143.3 kWh/m 3 . Increasing the airflow rate raises the instantaneous output power. However, it may also shift the outlet temperature outside the desired range for residential space heating, which highlights the importance of careful control and optimization. A CFD-based design study shows that the initial segmented reactor uses the two beds unevenly and yields imbalanced outlet temperatures, while simple geometric changes—shortening the upper bed and adding an inlet diffuser—make the flow and temperature fields more uniform, extend the high-temperature discharge period by about 22%, and increase the volumetric energy density.

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Cite This Study

Abohamzeh et al. (2026) studied this question.

synapsesocial.com/papers/698d6d445be6419ac0d5239ahttps://doi.org/10.3389/fenrg.2025.1726701
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