Thermodynamic Performance of Adsorption Working Pairs for Low-Temperature Waste Heat Upgrading in Industrial Applications
The present work aims at the thermodynamic analysis of different working pairs in adsorption heat transformers (AdHT) for low-temperature waste heat upgrade in industrial processes. Two different AdHT configurations have been simulated, namely with and without heat recovery between the adsorbent bed...
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doaj-fb72c789c68b493bb8af3c6c6528ad782021-04-09T23:04:24ZengMDPI AGApplied Sciences2076-34172021-04-01113389338910.3390/app11083389Thermodynamic Performance of Adsorption Working Pairs for Low-Temperature Waste Heat Upgrading in Industrial ApplicationsAndrea Frazzica0Valeria Palomba1Belal Dawoud2CNR—ITAE-Istituto di Tecnologie Avanzate per l’Energia “Nicola Giordano”, Salita S. Lucia sopra Contesse 5, 98126 Messina, ItalyCNR—ITAE-Istituto di Tecnologie Avanzate per l’Energia “Nicola Giordano”, Salita S. Lucia sopra Contesse 5, 98126 Messina, ItalyLaboratory of Sorption Processes, Faculty of Mechanical Engineering, Ostbayerische Technische Hochschule (OTH-Regensburg), Galgenberg Street, 30, D-93053 Regensburg, GermanyThe present work aims at the thermodynamic analysis of different working pairs in adsorption heat transformers (AdHT) for low-temperature waste heat upgrade in industrial processes. Two different AdHT configurations have been simulated, namely with and without heat recovery between the adsorbent beds. Ten working pairs, employing different adsorbent materials and four different refrigerants, have been compared at varying working boundary conditions. The effects of heat recovery and the presence of a temperature gradient for heat transfer between sinks/sources and the AdHT components have been analyzed. The achieved results demonstrate the possibility of increasing the overall performance when internal heat recovery is implemented. They also highlight the relevant role played by the existing temperature gradient between heat transfer fluids and components, that strongly affect the real operating cycle of the AdHT and thus its expected performance. Both extremely low, i.e., 40–50 °C, and low (i.e., 80 °C) waste heat source temperatures were investigated at variable ambient temperatures, evaluating the achievable COP and specific energy. The main results demonstrate that optimal performance can be achieved when 40–50 K of temperature difference between waste heat source and ambient temperature are guaranteed. Furthermore, composite sorbents demonstrated to be the most promising adsorbent materials for this application, given their high sorption capacity compared to pure adsorbents, which is reflected in much higher achievable specific energy.https://www.mdpi.com/2076-3417/11/8/3389adsorptionheat transformerheat upgradingefficiencywaste heatworking pairs |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Andrea Frazzica Valeria Palomba Belal Dawoud |
spellingShingle |
Andrea Frazzica Valeria Palomba Belal Dawoud Thermodynamic Performance of Adsorption Working Pairs for Low-Temperature Waste Heat Upgrading in Industrial Applications Applied Sciences adsorption heat transformer heat upgrading efficiency waste heat working pairs |
author_facet |
Andrea Frazzica Valeria Palomba Belal Dawoud |
author_sort |
Andrea Frazzica |
title |
Thermodynamic Performance of Adsorption Working Pairs for Low-Temperature Waste Heat Upgrading in Industrial Applications |
title_short |
Thermodynamic Performance of Adsorption Working Pairs for Low-Temperature Waste Heat Upgrading in Industrial Applications |
title_full |
Thermodynamic Performance of Adsorption Working Pairs for Low-Temperature Waste Heat Upgrading in Industrial Applications |
title_fullStr |
Thermodynamic Performance of Adsorption Working Pairs for Low-Temperature Waste Heat Upgrading in Industrial Applications |
title_full_unstemmed |
Thermodynamic Performance of Adsorption Working Pairs for Low-Temperature Waste Heat Upgrading in Industrial Applications |
title_sort |
thermodynamic performance of adsorption working pairs for low-temperature waste heat upgrading in industrial applications |
publisher |
MDPI AG |
series |
Applied Sciences |
issn |
2076-3417 |
publishDate |
2021-04-01 |
description |
The present work aims at the thermodynamic analysis of different working pairs in adsorption heat transformers (AdHT) for low-temperature waste heat upgrade in industrial processes. Two different AdHT configurations have been simulated, namely with and without heat recovery between the adsorbent beds. Ten working pairs, employing different adsorbent materials and four different refrigerants, have been compared at varying working boundary conditions. The effects of heat recovery and the presence of a temperature gradient for heat transfer between sinks/sources and the AdHT components have been analyzed. The achieved results demonstrate the possibility of increasing the overall performance when internal heat recovery is implemented. They also highlight the relevant role played by the existing temperature gradient between heat transfer fluids and components, that strongly affect the real operating cycle of the AdHT and thus its expected performance. Both extremely low, i.e., 40–50 °C, and low (i.e., 80 °C) waste heat source temperatures were investigated at variable ambient temperatures, evaluating the achievable COP and specific energy. The main results demonstrate that optimal performance can be achieved when 40–50 K of temperature difference between waste heat source and ambient temperature are guaranteed. Furthermore, composite sorbents demonstrated to be the most promising adsorbent materials for this application, given their high sorption capacity compared to pure adsorbents, which is reflected in much higher achievable specific energy. |
topic |
adsorption heat transformer heat upgrading efficiency waste heat working pairs |
url |
https://www.mdpi.com/2076-3417/11/8/3389 |
work_keys_str_mv |
AT andreafrazzica thermodynamicperformanceofadsorptionworkingpairsforlowtemperaturewasteheatupgradinginindustrialapplications AT valeriapalomba thermodynamicperformanceofadsorptionworkingpairsforlowtemperaturewasteheatupgradinginindustrialapplications AT belaldawoud thermodynamicperformanceofadsorptionworkingpairsforlowtemperaturewasteheatupgradinginindustrialapplications |
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