Time-interleaved multistage heat pipe-assisted adsorptive dehumidification for stable and high-efficiency supply air control

This study proposes a multistage heat pipe-assisted adsorptive dehumidifier (HP-AD) designed to address the inherent limitations of conventional desiccant systems, such as excessive supply air temperature rise and high regeneration energy requirements. A fundamental deficiency in single-module HP-ADs is the occurrence of high-amplitude, sawtooth wave-like fluctuations in the supply air’s hydrothermal states. These instabilities are intrinsically tied to the adsorption/desorption kinetics of the adsorbent coupled with the discrete 180° rotation cycles of the module, which collectively compromise the consistency of indoor air quality. To mitigate these fluctuations, a multistage architecture comprising five adsorbent-coated fin-heat pipe modules was developed and experimentally validated. Central to this system is a time-interleaved operational sequence, where each module rotates 180° based on a predefined phase-shift interval to achieve quasi-steady-state dehumidification. To maximize thermal effectiveness via the thermosyphon effect, the heat pipes were oriented parallel to the gravitational vector, enabling the latent heat of the working fluid to passively recover adsorption heat and facilitate water vapor desorption in the regeneration section. Experimental results demonstrate that the five-stage configuration significantly stabilizes the outlet conditions, achieving a 59.5% reduction in temperature variation and a 91.5% decrease in humidity fluctuation compared to a single-module baseline. Furthermore, the moisture removal rate and coefficient of performance improved by 2.9 and 2.5 times, respectively, due to superior thermal utilization. These findings validate the proposed system as a high-performance, high-efficiency, and robust prototype for advanced ventilation applications requiring high-precision indoor air quality control.

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Publication Details

Journal
Energy Conversion and Management
Published
2026-10-05
DOI
https://doi.org/10.1016/j.enconman.2026.122200
Primary Topic
Adsorption and Cooling Systems
Type
article
Field-Weighted Citation Impact
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article

Time-interleaved multistage heat pipe-assisted adsorptive dehumidification for stable and high-efficiency supply air control

Min-Gyu Ham, Seong-Yong Woo, Young‐Deuk Kim, Jun-Sik Kim et al.
Energy Conversion and Management
Adsorption and Cooling Systems
article

Time-interleaved multistage heat pipe-assisted adsorptive dehumidification for stable and high-efficiency supply air control

Min-Gyu Ham, Seong-Yong Woo, Young‐Deuk Kim, Jun-Sik Kim, Min-Seok Yoon, Se-Hoon Oh
article en

Abstract

This study proposes a multistage heat pipe-assisted adsorptive dehumidifier (HP-AD) designed to address the inherent limitations of conventional desiccant systems, such as excessive supply air temperature rise and high regeneration energy requirements. A fundamental deficiency in single-module HP-ADs is the occurrence of high-amplitude, sawtooth wave-like fluctuations in the supply air’s hydrothermal states. These instabilities are intrinsically tied to the adsorption/desorption kinetics of the adsorbent coupled with the discrete 180° rotation cycles of the module, which collectively compromise the consistency of indoor air quality. To mitigate these fluctuations, a multistage architecture comprising five adsorbent-coated fin-heat pipe modules was developed and experimentally validated. Central to this system is a time-interleaved operational sequence, where each module rotates 180° based on a predefined phase-shift interval to achieve quasi-steady-state dehumidification. To maximize thermal effectiveness via the thermosyphon effect, the heat pipes were oriented parallel to the gravitational vector, enabling the latent heat of the working fluid to passively recover adsorption heat and facilitate water vapor desorption in the regeneration section. Experimental results demonstrate that the five-stage configuration significantly stabilizes the outlet conditions, achieving a 59.5% reduction in temperature variation and a 91.5% decrease in humidity fluctuation compared to a single-module baseline. Furthermore, the moisture removal rate and coefficient of performance improved by 2.9 and 2.5 times, respectively, due to superior thermal utilization. These findings validate the proposed system as a high-performance, high-efficiency, and robust prototype for advanced ventilation applications requiring high-precision indoor air quality control.

Energy Conversion and ManagementVol. 371
Jeju TechnoPark (KR), Hanyang University (KR), Korea Institute of Industrial Technology (KR), Anyang University (KR)
Openalex Percentile: Top 21%
Adsorption and Cooling Systems
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