A novel approach to heat integration development and multi-objective optimization for a marine diesel engine: Towards a framework of waste-to-electric power, dual-stage coolant, and distilled water

Heat integration is a well-admitted technology to reuse the waste of different engines in different arrangements, relying on the principal needs. Considering the heat capacity of the flow released from the engine of a ship during maritime travel, heat integration is a promising tool to maintain the...

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Published in:Process Safety and Environmental Protection
Main Author: Hai T.; Singh P.K.; Al-Qaysi H.J.A.; Farhang B.; El-Salam N.M.A.; El-Shafai W.
Format: Article
Language:English
Published: Institution of Chemical Engineers 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85167626668&doi=10.1016%2fj.psep.2023.07.071&partnerID=40&md5=6aeb27ad6c072806443fa31c238f6c9a
id 2-s2.0-85167626668
spelling 2-s2.0-85167626668
Hai T.; Singh P.K.; Al-Qaysi H.J.A.; Farhang B.; El-Salam N.M.A.; El-Shafai W.
A novel approach to heat integration development and multi-objective optimization for a marine diesel engine: Towards a framework of waste-to-electric power, dual-stage coolant, and distilled water
2023
Process Safety and Environmental Protection
178

10.1016/j.psep.2023.07.071
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85167626668&doi=10.1016%2fj.psep.2023.07.071&partnerID=40&md5=6aeb27ad6c072806443fa31c238f6c9a
Heat integration is a well-admitted technology to reuse the waste of different engines in different arrangements, relying on the principal needs. Considering the heat capacity of the flow released from the engine of a ship during maritime travel, heat integration is a promising tool to maintain the marine environment, along with processing some energy-related needs of the ship. This is a technology that is being developed based on which this study presents a new structure. In this regard, an innovative combined cooling and power (CCP) scheme using a dual-stage coolant production technology (bi-evaporator) for air-conditioning and freezing purposes is arranged and integrated into the engine. The proposed technology, which can provide one of the basic needs of a ship during maritime travel, i.e., freezing, has not been studied and optimized for a ship in previous studies. In addition, the arranged structure uses a multi-effect desalination coupled with the engine for cascade heat integration. First, the most suitable working fluid of the designed CCP was investigated using a comparative study. Afterward, based on the selected working fluid, the entire process was simulated and scrutinized in the engineering equation solver (EES) software from the viewpoints of thermodynamics, environment, economics, and sustainability. Eventually, this structure is optimized using a NSGA-II optimization method in the MATLAB environment. Here, the most suitable working fluid determined by the TOPSIS approach is R236ea, and the optimal unit cost of products and sustainability index are found as 0.7326 $/GJ and 1.335, respectively. © 2023 The Institution of Chemical Engineers
Institution of Chemical Engineers
9575820
English
Article

author Hai T.; Singh P.K.; Al-Qaysi H.J.A.; Farhang B.; El-Salam N.M.A.; El-Shafai W.
spellingShingle Hai T.; Singh P.K.; Al-Qaysi H.J.A.; Farhang B.; El-Salam N.M.A.; El-Shafai W.
A novel approach to heat integration development and multi-objective optimization for a marine diesel engine: Towards a framework of waste-to-electric power, dual-stage coolant, and distilled water
author_facet Hai T.; Singh P.K.; Al-Qaysi H.J.A.; Farhang B.; El-Salam N.M.A.; El-Shafai W.
author_sort Hai T.; Singh P.K.; Al-Qaysi H.J.A.; Farhang B.; El-Salam N.M.A.; El-Shafai W.
title A novel approach to heat integration development and multi-objective optimization for a marine diesel engine: Towards a framework of waste-to-electric power, dual-stage coolant, and distilled water
title_short A novel approach to heat integration development and multi-objective optimization for a marine diesel engine: Towards a framework of waste-to-electric power, dual-stage coolant, and distilled water
title_full A novel approach to heat integration development and multi-objective optimization for a marine diesel engine: Towards a framework of waste-to-electric power, dual-stage coolant, and distilled water
title_fullStr A novel approach to heat integration development and multi-objective optimization for a marine diesel engine: Towards a framework of waste-to-electric power, dual-stage coolant, and distilled water
title_full_unstemmed A novel approach to heat integration development and multi-objective optimization for a marine diesel engine: Towards a framework of waste-to-electric power, dual-stage coolant, and distilled water
title_sort A novel approach to heat integration development and multi-objective optimization for a marine diesel engine: Towards a framework of waste-to-electric power, dual-stage coolant, and distilled water
publishDate 2023
container_title Process Safety and Environmental Protection
container_volume 178
container_issue
doi_str_mv 10.1016/j.psep.2023.07.071
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85167626668&doi=10.1016%2fj.psep.2023.07.071&partnerID=40&md5=6aeb27ad6c072806443fa31c238f6c9a
description Heat integration is a well-admitted technology to reuse the waste of different engines in different arrangements, relying on the principal needs. Considering the heat capacity of the flow released from the engine of a ship during maritime travel, heat integration is a promising tool to maintain the marine environment, along with processing some energy-related needs of the ship. This is a technology that is being developed based on which this study presents a new structure. In this regard, an innovative combined cooling and power (CCP) scheme using a dual-stage coolant production technology (bi-evaporator) for air-conditioning and freezing purposes is arranged and integrated into the engine. The proposed technology, which can provide one of the basic needs of a ship during maritime travel, i.e., freezing, has not been studied and optimized for a ship in previous studies. In addition, the arranged structure uses a multi-effect desalination coupled with the engine for cascade heat integration. First, the most suitable working fluid of the designed CCP was investigated using a comparative study. Afterward, based on the selected working fluid, the entire process was simulated and scrutinized in the engineering equation solver (EES) software from the viewpoints of thermodynamics, environment, economics, and sustainability. Eventually, this structure is optimized using a NSGA-II optimization method in the MATLAB environment. Here, the most suitable working fluid determined by the TOPSIS approach is R236ea, and the optimal unit cost of products and sustainability index are found as 0.7326 $/GJ and 1.335, respectively. © 2023 The Institution of Chemical Engineers
publisher Institution of Chemical Engineers
issn 9575820
language English
format Article
accesstype
record_format scopus
collection Scopus
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