Investigation of Ventilation Energy Recovery with Polymer Membrane Material-Based Counter-Flow Energy Exchanger for Nearly Zero-Energy Buildings
The usage of energy recovery ventilation units was extended in European countries. Air-to-air heat and energy recovery is an effective procedure to reduce energy consumption of the ventilation air. However, the material of the core significantly influences the performance of the exchangers, which is...
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ftrepec:oai:RePEc:gam:jeners:v:12:y:2019:i:9:p:1727-:d:228992 2024-04-14T08:13:47+00:00 Investigation of Ventilation Energy Recovery with Polymer Membrane Material-Based Counter-Flow Energy Exchanger for Nearly Zero-Energy Buildings Miklos Kassai Laith Al-Hyari https://www.mdpi.com/1996-1073/12/9/1727/pdf https://www.mdpi.com/1996-1073/12/9/1727/ unknown https://www.mdpi.com/1996-1073/12/9/1727/pdf https://www.mdpi.com/1996-1073/12/9/1727/ article ftrepec 2024-03-19T10:31:35Z The usage of energy recovery ventilation units was extended in European countries. Air-to-air heat and energy recovery is an effective procedure to reduce energy consumption of the ventilation air. However, the material of the core significantly influences the performance of the exchangers, which is becoming an extremely important aspect to meet the energy requirements of nearly zero-energy buildings. In this study, the performance of two counter-flow heat/enthalpy energy exchangers are experimentally tested under different operating conditions, and the values of the sensible, latent, and total effectiveness are presented. Moreover, the effects of the material of two exchangers (polystyrene for the sensible heat exchanger and polymer membrane for the energy exchanger) on the energy consumption of ventilation in European cities with three different climates (in Reykjavík in Iceland as a cold climate, in Budapest in Hungary as a temperate climate, and in Rome in Italy as a warm climate) are evaluated. The results show that the energy recovery of ventilation air with a polymer membrane material-based counter-flow energy exchanger performs better than using a polystyrene sensible heat recovery unit. building energy efficiency; air-to-air energy exchanger; polymer membrane material for energy efficiency; ventilation system; energy consumption Article in Journal/Newspaper Iceland Reykjavík Reykjavík RePEc (Research Papers in Economics) Reykjavík |
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RePEc (Research Papers in Economics) |
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The usage of energy recovery ventilation units was extended in European countries. Air-to-air heat and energy recovery is an effective procedure to reduce energy consumption of the ventilation air. However, the material of the core significantly influences the performance of the exchangers, which is becoming an extremely important aspect to meet the energy requirements of nearly zero-energy buildings. In this study, the performance of two counter-flow heat/enthalpy energy exchangers are experimentally tested under different operating conditions, and the values of the sensible, latent, and total effectiveness are presented. Moreover, the effects of the material of two exchangers (polystyrene for the sensible heat exchanger and polymer membrane for the energy exchanger) on the energy consumption of ventilation in European cities with three different climates (in Reykjavík in Iceland as a cold climate, in Budapest in Hungary as a temperate climate, and in Rome in Italy as a warm climate) are evaluated. The results show that the energy recovery of ventilation air with a polymer membrane material-based counter-flow energy exchanger performs better than using a polystyrene sensible heat recovery unit. building energy efficiency; air-to-air energy exchanger; polymer membrane material for energy efficiency; ventilation system; energy consumption |
format |
Article in Journal/Newspaper |
author |
Miklos Kassai Laith Al-Hyari |
spellingShingle |
Miklos Kassai Laith Al-Hyari Investigation of Ventilation Energy Recovery with Polymer Membrane Material-Based Counter-Flow Energy Exchanger for Nearly Zero-Energy Buildings |
author_facet |
Miklos Kassai Laith Al-Hyari |
author_sort |
Miklos Kassai |
title |
Investigation of Ventilation Energy Recovery with Polymer Membrane Material-Based Counter-Flow Energy Exchanger for Nearly Zero-Energy Buildings |
title_short |
Investigation of Ventilation Energy Recovery with Polymer Membrane Material-Based Counter-Flow Energy Exchanger for Nearly Zero-Energy Buildings |
title_full |
Investigation of Ventilation Energy Recovery with Polymer Membrane Material-Based Counter-Flow Energy Exchanger for Nearly Zero-Energy Buildings |
title_fullStr |
Investigation of Ventilation Energy Recovery with Polymer Membrane Material-Based Counter-Flow Energy Exchanger for Nearly Zero-Energy Buildings |
title_full_unstemmed |
Investigation of Ventilation Energy Recovery with Polymer Membrane Material-Based Counter-Flow Energy Exchanger for Nearly Zero-Energy Buildings |
title_sort |
investigation of ventilation energy recovery with polymer membrane material-based counter-flow energy exchanger for nearly zero-energy buildings |
url |
https://www.mdpi.com/1996-1073/12/9/1727/pdf https://www.mdpi.com/1996-1073/12/9/1727/ |
geographic |
Reykjavík |
geographic_facet |
Reykjavík |
genre |
Iceland Reykjavík Reykjavík |
genre_facet |
Iceland Reykjavík Reykjavík |
op_relation |
https://www.mdpi.com/1996-1073/12/9/1727/pdf https://www.mdpi.com/1996-1073/12/9/1727/ |
_version_ |
1796311856742137856 |