Experimental and numerical study on thermal‐hydraulic performance of printed circuit heat exchanger for liquefied gas vaporization
Abstract The thermal‐hydraulic performance of printed circuit heat exchanger (PCHE) through an experimental vaporization process of supercritical nitrogen was investigated. The inlet temperature of supercritical nitrogen was controlled between 113 K and 129 K, while its pressure was controlled betwe...
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Online Access: | https://doi.org/10.1002/ese3.525 |
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doaj-3521fdafe1f54f23b1045b7a5ee550872020-11-25T03:34:59ZengWileyEnergy Science & Engineering2050-05052020-02-018242644010.1002/ese3.525Experimental and numerical study on thermal‐hydraulic performance of printed circuit heat exchanger for liquefied gas vaporizationZhongchao Zhao0Xudong Chen1Xiao Zhang2Xiaolong Ma3Shan Yang4School of Energy and Power Jiangsu University of Science and Technology Zhenjiang ChinaSchool of Energy and Power Jiangsu University of Science and Technology Zhenjiang ChinaSchool of Energy and Power Jiangsu University of Science and Technology Zhenjiang ChinaSchool of Energy and Power Jiangsu University of Science and Technology Zhenjiang ChinaSchool of Energy and Power Jiangsu University of Science and Technology Zhenjiang ChinaAbstract The thermal‐hydraulic performance of printed circuit heat exchanger (PCHE) through an experimental vaporization process of supercritical nitrogen was investigated. The inlet temperature of supercritical nitrogen was controlled between 113 K and 129 K, while its pressure was controlled between 4.5 MPa and 6 MPa. The mass of supercritical nitrogen corresponds to the turbulent state on the cold side of PCHE, which was maintained at 299.94 kg/h. A numerical processing of the same supercritical nitrogen flow through a single channel of PCHE cold side was presented. The numerical results were validated by comparison with the experimental data. Both experimental and numerical results showed that the increased inlet supercritical nitrogen pressure improved the heat transfer performance and pressure drop decreased with increasing the pressure at the PCHE cold side. Furthermore, the Fanning friction coefficient (f) and the Nusselt number (Nu) of supercritical nitrogen flow obtained by numerical simulation and empirical correlation were compared.https://doi.org/10.1002/ese3.525nitrogen gasificationprinted circuit heat exchangersupercritical fluidthermal‐hydraulic performance |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Zhongchao Zhao Xudong Chen Xiao Zhang Xiaolong Ma Shan Yang |
spellingShingle |
Zhongchao Zhao Xudong Chen Xiao Zhang Xiaolong Ma Shan Yang Experimental and numerical study on thermal‐hydraulic performance of printed circuit heat exchanger for liquefied gas vaporization Energy Science & Engineering nitrogen gasification printed circuit heat exchanger supercritical fluid thermal‐hydraulic performance |
author_facet |
Zhongchao Zhao Xudong Chen Xiao Zhang Xiaolong Ma Shan Yang |
author_sort |
Zhongchao Zhao |
title |
Experimental and numerical study on thermal‐hydraulic performance of printed circuit heat exchanger for liquefied gas vaporization |
title_short |
Experimental and numerical study on thermal‐hydraulic performance of printed circuit heat exchanger for liquefied gas vaporization |
title_full |
Experimental and numerical study on thermal‐hydraulic performance of printed circuit heat exchanger for liquefied gas vaporization |
title_fullStr |
Experimental and numerical study on thermal‐hydraulic performance of printed circuit heat exchanger for liquefied gas vaporization |
title_full_unstemmed |
Experimental and numerical study on thermal‐hydraulic performance of printed circuit heat exchanger for liquefied gas vaporization |
title_sort |
experimental and numerical study on thermal‐hydraulic performance of printed circuit heat exchanger for liquefied gas vaporization |
publisher |
Wiley |
series |
Energy Science & Engineering |
issn |
2050-0505 |
publishDate |
2020-02-01 |
description |
Abstract The thermal‐hydraulic performance of printed circuit heat exchanger (PCHE) through an experimental vaporization process of supercritical nitrogen was investigated. The inlet temperature of supercritical nitrogen was controlled between 113 K and 129 K, while its pressure was controlled between 4.5 MPa and 6 MPa. The mass of supercritical nitrogen corresponds to the turbulent state on the cold side of PCHE, which was maintained at 299.94 kg/h. A numerical processing of the same supercritical nitrogen flow through a single channel of PCHE cold side was presented. The numerical results were validated by comparison with the experimental data. Both experimental and numerical results showed that the increased inlet supercritical nitrogen pressure improved the heat transfer performance and pressure drop decreased with increasing the pressure at the PCHE cold side. Furthermore, the Fanning friction coefficient (f) and the Nusselt number (Nu) of supercritical nitrogen flow obtained by numerical simulation and empirical correlation were compared. |
topic |
nitrogen gasification printed circuit heat exchanger supercritical fluid thermal‐hydraulic performance |
url |
https://doi.org/10.1002/ese3.525 |
work_keys_str_mv |
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1724556189681844224 |