Multi-objective optimization design and performance evaluation of a novel multi-stream intermediate fluid vaporizer with cold energy recovery

Vaporizers are the key heat transfer device in the regasification process of liquefied natural gas (LNG), especially for the conventional onshore LNG receiving stations. This paper has proposed a novel intermediate fluid vaporizer by employing multi-stream plate-fin heat exchanger (MPFHE-IFV). Compa...

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Main Authors: Wang, Zhe, Cai, Wenjian, Hong, Wei, Shen, Suping, Yang, Huizhu, Han, Fenghui
Other Authors: School of Electrical and Electronic Engineering
Format: Article
Language:English
Published: 2021
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Online Access:https://hdl.handle.net/10356/151540
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1515402021-06-30T01:55:05Z Multi-objective optimization design and performance evaluation of a novel multi-stream intermediate fluid vaporizer with cold energy recovery Wang, Zhe Cai, Wenjian Hong, Wei Shen, Suping Yang, Huizhu Han, Fenghui School of Electrical and Electronic Engineering Engineering::Electrical and electronic engineering Intermediate Fluid Vaporizer Multi-stream Plate-fin Heat Exchanger Vaporizers are the key heat transfer device in the regasification process of liquefied natural gas (LNG), especially for the conventional onshore LNG receiving stations. This paper has proposed a novel intermediate fluid vaporizer by employing multi-stream plate-fin heat exchanger (MPFHE-IFV). Compared to traditional shell-and-tube IFVs, it can not only achieve a higher heat transfer efficiency with more compact structure using MPFHE but also realize the recovery and reuse of LNG cold energy with intermediate fluid. In this ingenious design, the self-evaporating gas of cryogenic liquid is adopted as the intermediate medium of IFV so that the equipment freezing can be effectively avoided under large flow conditions. A thermal-hydraulic design model has been established for MPFHE-IFV to determine the detailed structural dimensions as well as the heat transfer performance, and a corresponding multi-objective optimization algorithm has been adopted to obtain the minimum equipment volume, the optimal channel arrangement and fin structure, the maximum cold energy recovery efficiency and the optimal number of internal cycles. Meanwhile, the transmission process of the cryogenic exergy in MPFHE-IFV has been revealed according to the analysis of the system temperature-entropy diagram. Finally, two experimental cases based on the liquid nitrogen regasification process are conducted to evaluate the practical performance of the novel MPFHE-IFVs using the design and optimization method proposed in this paper. The results indicate that this new type of IFV can reach the highest cold energy recovery efficiency up to 95% within the 8% error range when the heat transfer capacity is 11.5 kW and the heat medium flow rate is near 330 L/h. National Research Foundation (NRF) The funds supported this work include the National Research Foundation of Singapore under the grant NRF2014EWT-EIRP003-014, NRF2013EWT-EIRP004-019, NRF2011NRF-CRP001-090, the Fundamental Research Funds for the Central Universities No. 3132018248 and the National Natural Science Foundation of China No. 51906026, No. 51876019, No. 51779026. Their support is gratefully acknowledged. 2021-06-30T01:55:04Z 2021-06-30T01:55:04Z 2019 Journal Article Wang, Z., Cai, W., Hong, W., Shen, S., Yang, H. & Han, F. (2019). Multi-objective optimization design and performance evaluation of a novel multi-stream intermediate fluid vaporizer with cold energy recovery. Energy Conversion and Management, 195, 32-42. https://dx.doi.org/10.1016/j.enconman.2019.04.066 0196-8904 0000-0003-4715-8510 https://hdl.handle.net/10356/151540 10.1016/j.enconman.2019.04.066 2-s2.0-85065085576 195 32 42 en NRF2014EWT-EIRP003-014 NRF2013EWT-EIRP004-019 NRF2011NRF-CRP001-090 Energy Conversion and Management © 2019 Elsevier Ltd. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Electrical and electronic engineering
Intermediate Fluid Vaporizer
Multi-stream Plate-fin Heat Exchanger
spellingShingle Engineering::Electrical and electronic engineering
Intermediate Fluid Vaporizer
Multi-stream Plate-fin Heat Exchanger
Wang, Zhe
Cai, Wenjian
Hong, Wei
Shen, Suping
Yang, Huizhu
Han, Fenghui
Multi-objective optimization design and performance evaluation of a novel multi-stream intermediate fluid vaporizer with cold energy recovery
description Vaporizers are the key heat transfer device in the regasification process of liquefied natural gas (LNG), especially for the conventional onshore LNG receiving stations. This paper has proposed a novel intermediate fluid vaporizer by employing multi-stream plate-fin heat exchanger (MPFHE-IFV). Compared to traditional shell-and-tube IFVs, it can not only achieve a higher heat transfer efficiency with more compact structure using MPFHE but also realize the recovery and reuse of LNG cold energy with intermediate fluid. In this ingenious design, the self-evaporating gas of cryogenic liquid is adopted as the intermediate medium of IFV so that the equipment freezing can be effectively avoided under large flow conditions. A thermal-hydraulic design model has been established for MPFHE-IFV to determine the detailed structural dimensions as well as the heat transfer performance, and a corresponding multi-objective optimization algorithm has been adopted to obtain the minimum equipment volume, the optimal channel arrangement and fin structure, the maximum cold energy recovery efficiency and the optimal number of internal cycles. Meanwhile, the transmission process of the cryogenic exergy in MPFHE-IFV has been revealed according to the analysis of the system temperature-entropy diagram. Finally, two experimental cases based on the liquid nitrogen regasification process are conducted to evaluate the practical performance of the novel MPFHE-IFVs using the design and optimization method proposed in this paper. The results indicate that this new type of IFV can reach the highest cold energy recovery efficiency up to 95% within the 8% error range when the heat transfer capacity is 11.5 kW and the heat medium flow rate is near 330 L/h.
author2 School of Electrical and Electronic Engineering
author_facet School of Electrical and Electronic Engineering
Wang, Zhe
Cai, Wenjian
Hong, Wei
Shen, Suping
Yang, Huizhu
Han, Fenghui
format Article
author Wang, Zhe
Cai, Wenjian
Hong, Wei
Shen, Suping
Yang, Huizhu
Han, Fenghui
author_sort Wang, Zhe
title Multi-objective optimization design and performance evaluation of a novel multi-stream intermediate fluid vaporizer with cold energy recovery
title_short Multi-objective optimization design and performance evaluation of a novel multi-stream intermediate fluid vaporizer with cold energy recovery
title_full Multi-objective optimization design and performance evaluation of a novel multi-stream intermediate fluid vaporizer with cold energy recovery
title_fullStr Multi-objective optimization design and performance evaluation of a novel multi-stream intermediate fluid vaporizer with cold energy recovery
title_full_unstemmed Multi-objective optimization design and performance evaluation of a novel multi-stream intermediate fluid vaporizer with cold energy recovery
title_sort multi-objective optimization design and performance evaluation of a novel multi-stream intermediate fluid vaporizer with cold energy recovery
publishDate 2021
url https://hdl.handle.net/10356/151540
_version_ 1705151341563740160