Design and experiment study on the performance of liquefied natural gas cold energy recovery

This paper investigated on the cold energy recovery process (CERS) from the regasification of cryogenic LNG. The cryogenic regasification process will produce a large amount of cold energy. The main objective of this paper is to analyse the process and theories used in CERS and regasification proces...

Full description

Saved in:
Bibliographic Details
Main Author: Fareez Khan Mohd Hasrat
Other Authors: Cai Wenjian
Format: Final Year Project
Language:English
Published: 2019
Subjects:
Online Access:http://hdl.handle.net/10356/78316
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Nanyang Technological University
Language: English
id sg-ntu-dr.10356-78316
record_format dspace
spelling sg-ntu-dr.10356-783162023-07-07T15:55:43Z Design and experiment study on the performance of liquefied natural gas cold energy recovery Fareez Khan Mohd Hasrat Cai Wenjian School of Electrical and Electronic Engineering DRNTU::Engineering::Electrical and electronic engineering This paper investigated on the cold energy recovery process (CERS) from the regasification of cryogenic LNG. The cryogenic regasification process will produce a large amount of cold energy. The main objective of this paper is to analyse the process and theories used in CERS and regasification processes and apply the theories to design an improved heat exchanger. This paper studied an experiment which involved cryogenic liquid nitrogen (LN2) and ethylene glycol-water 50%-50% solution’s (EG) heat exchange process via a series of three heat exchangers: the evaporator, superheater and recuperator. The design of the heat exchanger was to be made with reference to the specifications of the evaporator. The dimensions of the fins, the total number of layers and the arrangement of the hot and cold layers of the heat exchanger were examined with respect to the structure of the evaporator. Thus, the dimensions and the layering arrangement of the heat exchanger were manipulated to produce a greater heat exchange area, A and Number of Transfer Units (NTU). The effectiveness of the heat exchanger was calculated based on the Ɛ-NTU method which was dependent on A and NTU. Thus, a greater A resulted in a higher value of NTU which in turn boosted the effectiveness of the heat exchanger from 93% to 96.5%. Thus, a more effective heat exchanger can enhance the performance of the CERS. Bachelor of Engineering (Electrical and Electronic Engineering) 2019-06-17T07:50:50Z 2019-06-17T07:50:50Z 2019 Final Year Project (FYP) http://hdl.handle.net/10356/78316 en Nanyang Technological University 53 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Electrical and electronic engineering
spellingShingle DRNTU::Engineering::Electrical and electronic engineering
Fareez Khan Mohd Hasrat
Design and experiment study on the performance of liquefied natural gas cold energy recovery
description This paper investigated on the cold energy recovery process (CERS) from the regasification of cryogenic LNG. The cryogenic regasification process will produce a large amount of cold energy. The main objective of this paper is to analyse the process and theories used in CERS and regasification processes and apply the theories to design an improved heat exchanger. This paper studied an experiment which involved cryogenic liquid nitrogen (LN2) and ethylene glycol-water 50%-50% solution’s (EG) heat exchange process via a series of three heat exchangers: the evaporator, superheater and recuperator. The design of the heat exchanger was to be made with reference to the specifications of the evaporator. The dimensions of the fins, the total number of layers and the arrangement of the hot and cold layers of the heat exchanger were examined with respect to the structure of the evaporator. Thus, the dimensions and the layering arrangement of the heat exchanger were manipulated to produce a greater heat exchange area, A and Number of Transfer Units (NTU). The effectiveness of the heat exchanger was calculated based on the Ɛ-NTU method which was dependent on A and NTU. Thus, a greater A resulted in a higher value of NTU which in turn boosted the effectiveness of the heat exchanger from 93% to 96.5%. Thus, a more effective heat exchanger can enhance the performance of the CERS.
author2 Cai Wenjian
author_facet Cai Wenjian
Fareez Khan Mohd Hasrat
format Final Year Project
author Fareez Khan Mohd Hasrat
author_sort Fareez Khan Mohd Hasrat
title Design and experiment study on the performance of liquefied natural gas cold energy recovery
title_short Design and experiment study on the performance of liquefied natural gas cold energy recovery
title_full Design and experiment study on the performance of liquefied natural gas cold energy recovery
title_fullStr Design and experiment study on the performance of liquefied natural gas cold energy recovery
title_full_unstemmed Design and experiment study on the performance of liquefied natural gas cold energy recovery
title_sort design and experiment study on the performance of liquefied natural gas cold energy recovery
publishDate 2019
url http://hdl.handle.net/10356/78316
_version_ 1772826720329531392