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Cooling Capacity Test for MIL-101(Cr)/CaCl(2) for Adsorption Refrigeration System

An MIL-101(Cr) powder material was successfully prepared using the hydrothermal synthesis method, and then the original MIL-101(Cr) was combined with different mass fractions of CaCl(2) using the immersion method to obtain a MIL-101(Cr)/CaCl(2) composite material. The physical properties of the adso...

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Autores principales: Liu, Zhongbao, Zhao, Banghua, Huang, Yong, Qi, Xin, Lou, Fengfei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7504781/
https://www.ncbi.nlm.nih.gov/pubmed/32878238
http://dx.doi.org/10.3390/molecules25173975
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author Liu, Zhongbao
Zhao, Banghua
Huang, Yong
Qi, Xin
Lou, Fengfei
author_facet Liu, Zhongbao
Zhao, Banghua
Huang, Yong
Qi, Xin
Lou, Fengfei
author_sort Liu, Zhongbao
collection PubMed
description An MIL-101(Cr) powder material was successfully prepared using the hydrothermal synthesis method, and then the original MIL-101(Cr) was combined with different mass fractions of CaCl(2) using the immersion method to obtain a MIL-101(Cr)/CaCl(2) composite material. The physical properties of the adsorbent were determined by X-ray powder diffraction (XRD), an N2 adsorption desorption isotherm test, and thermogravimetric analysis (TG). The water vapor adsorption performance of the metal-organic frameworks MOFs was tested with a gravimetric water vapor adsorption instrument to analyze its water vapor adsorption mechanism. Based on the SIMULINK platform in the MATLAB software, a simulation model of the coefficient of performance (COP) and cooling capacity of the adsorption refrigeration system was established, and the variation trends of the COP and cooling capacity of the adsorption refrigeration system under different evaporation/condensation/adsorption/desorption temperatures was theoretically studied. MIL101-(Cr)/CaCl(2)-20% was selected as the adsorption material in the adsorption refrigeration system through the physical characterization of composite materials with different CaCl(2) concentrations by means of adsorption water vapor test experiments. A closed adsorption system performance test device was built based on the liquid level method. The cooling power per unit and adsorbent mass (COP and SCP) of the system were tested at different evaporation temperatures (288 K/293 K/298 K); the adsorption temperature was 298 K, the condensation temperature was 308 K, and the desorption temperature was 353 K. The experimental results showed that COP and SCP increased with the increase in the evaporation temperature. When the evaporation temperature was 298 K, the level of COP was 0.172, and the level of SCP was 136.9 W/kg. The COP and SCP of the system were tested at different adsorption temperatures (293 K/298 K/303 K); the evaporation temperature was 288 K, the condensation temperature was 308 K, and the desorption temperature was 353 K. The experimental results showed that the levels of COP and SCP decreased with the increase in the adsorption temperature. When the adsorption temperature was 293 K, the level of COP was 0.18, and the level of SCP was 142.4 W/kg.
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spelling pubmed-75047812020-09-26 Cooling Capacity Test for MIL-101(Cr)/CaCl(2) for Adsorption Refrigeration System Liu, Zhongbao Zhao, Banghua Huang, Yong Qi, Xin Lou, Fengfei Molecules Article An MIL-101(Cr) powder material was successfully prepared using the hydrothermal synthesis method, and then the original MIL-101(Cr) was combined with different mass fractions of CaCl(2) using the immersion method to obtain a MIL-101(Cr)/CaCl(2) composite material. The physical properties of the adsorbent were determined by X-ray powder diffraction (XRD), an N2 adsorption desorption isotherm test, and thermogravimetric analysis (TG). The water vapor adsorption performance of the metal-organic frameworks MOFs was tested with a gravimetric water vapor adsorption instrument to analyze its water vapor adsorption mechanism. Based on the SIMULINK platform in the MATLAB software, a simulation model of the coefficient of performance (COP) and cooling capacity of the adsorption refrigeration system was established, and the variation trends of the COP and cooling capacity of the adsorption refrigeration system under different evaporation/condensation/adsorption/desorption temperatures was theoretically studied. MIL101-(Cr)/CaCl(2)-20% was selected as the adsorption material in the adsorption refrigeration system through the physical characterization of composite materials with different CaCl(2) concentrations by means of adsorption water vapor test experiments. A closed adsorption system performance test device was built based on the liquid level method. The cooling power per unit and adsorbent mass (COP and SCP) of the system were tested at different evaporation temperatures (288 K/293 K/298 K); the adsorption temperature was 298 K, the condensation temperature was 308 K, and the desorption temperature was 353 K. The experimental results showed that COP and SCP increased with the increase in the evaporation temperature. When the evaporation temperature was 298 K, the level of COP was 0.172, and the level of SCP was 136.9 W/kg. The COP and SCP of the system were tested at different adsorption temperatures (293 K/298 K/303 K); the evaporation temperature was 288 K, the condensation temperature was 308 K, and the desorption temperature was 353 K. The experimental results showed that the levels of COP and SCP decreased with the increase in the adsorption temperature. When the adsorption temperature was 293 K, the level of COP was 0.18, and the level of SCP was 142.4 W/kg. MDPI 2020-08-31 /pmc/articles/PMC7504781/ /pubmed/32878238 http://dx.doi.org/10.3390/molecules25173975 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Liu, Zhongbao
Zhao, Banghua
Huang, Yong
Qi, Xin
Lou, Fengfei
Cooling Capacity Test for MIL-101(Cr)/CaCl(2) for Adsorption Refrigeration System
title Cooling Capacity Test for MIL-101(Cr)/CaCl(2) for Adsorption Refrigeration System
title_full Cooling Capacity Test for MIL-101(Cr)/CaCl(2) for Adsorption Refrigeration System
title_fullStr Cooling Capacity Test for MIL-101(Cr)/CaCl(2) for Adsorption Refrigeration System
title_full_unstemmed Cooling Capacity Test for MIL-101(Cr)/CaCl(2) for Adsorption Refrigeration System
title_short Cooling Capacity Test for MIL-101(Cr)/CaCl(2) for Adsorption Refrigeration System
title_sort cooling capacity test for mil-101(cr)/cacl(2) for adsorption refrigeration system
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7504781/
https://www.ncbi.nlm.nih.gov/pubmed/32878238
http://dx.doi.org/10.3390/molecules25173975
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