Alcohol-Based Adsorption Heat Pumps using Hydrophobic Metal-Organic Frameworks
R. M. Madero-Castro, A. Luna-Triguero, C. Gonz\'alez-Gal\'an, J. M., Vicent-Luna, and S. Calero

TL;DR
This paper presents a comprehensive method combining adsorption data processing and thermodynamic modeling to evaluate and optimize alcohol-based adsorption heat pumps using hydrophobic metal-organic frameworks, highlighting MAF-6 as a promising material.
Contribution
It introduces a multistep approach for assessing adsorption heat pump performance and identifies MAF-6 as an effective adsorbent for heating and cooling applications.
Findings
MAF-6 shows high working capacity and energy efficiency.
Operating temperature significantly impacts heat pump performance.
Molecular simulations accurately describe adsorption mechanisms.
Abstract
The building climate industry and its influence on energy consumption have consequences on the environment due to the emission of greenhouse gasses. Improving the efficiency of this sector is essential to reduce the effect on climate change. In recent years, the interest in porous materials in applications such as heat pumps has increased for their promising potential. To assess the performance of adsorption heat pumps and cooling systems, here we discuss a multistep approach based on the processing of adsorption data combined with a thermodynamic model. The process provides properties of interest, such as the coefficient of performance, the working capacity, the specific heat or cooling effect, or the released heat upon adsorption and desorption cycles, and it also has the advantage of identifying the optimal conditions for each adsorbent-fluid pair. To test this method, we select…
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Taxonomy
TopicsCarbon Dioxide Capture Technologies · Phase Equilibria and Thermodynamics · Metal-Organic Frameworks: Synthesis and Applications
