Numerical Investigation of Motive Pressure on Condensation and Evaporation Process in Steam Ejector of Renewable Refrigeration System

In today's life, it is very necessary to use cooling systems in the domestic and industrial cooling process, and the air-conditioning and refrigeration industry has the highest rate of electrical energy consumption in countries with hot weather. Therefore, it is very important to find a cycle w...

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Main Authors: Rakibul Islam, Amir Sohel, Md Faisal Bin Ashab
Format: Article
Language:English
Published: Bilijipub publisher 2023-12-01
Series:Advances in Engineering and Intelligence Systems
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Online Access:https://aeis.bilijipub.com/article_186521_8b99573510d40ef9e5a333bef9c3ad17.pdf
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author Rakibul Islam
Amir Sohel
Md Faisal Bin Ashab
author_facet Rakibul Islam
Amir Sohel
Md Faisal Bin Ashab
author_sort Rakibul Islam
collection DOAJ
description In today's life, it is very necessary to use cooling systems in the domestic and industrial cooling process, and the air-conditioning and refrigeration industry has the highest rate of electrical energy consumption in countries with hot weather. Therefore, it is very important to find a cycle with low energy consumption. Ejector refrigeration cycle can be a suitable option due to low energy consumption and compatibility with the environment. This study investigates the effect of pressure of motive flow on refrigeration cycle’s ejector performance. The k-wSST turbulence model and the non-equilibrium condensation model are used to simulate the ejector. According to the results, the present model can well predict the flow behavior in the ejector. As the pressure of motive flow increases, the minimum pressure and minimum temperature in the ejector decreases and the maximum Mach number increases in the ejector, and the production entropy and COP decrease. The pressure of motive flow has a significant effect on the oblique shocks and shock train. The entrainment ratio, which is one of the most important parameters of the ejector, decreases with increasing pressure of motive flow. As the pressure increases from 1.98 bar to 4.75 bar, the entrainment ratio decreases by 62%, the primary flow rate increases from 0.000693 kg/s to 0.001597 kg/s, and a 130% increase in the primary flow rate is seen.
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spelling doaj-art-51759387dd464563b99a1bd045e94f3e2025-02-12T08:47:31ZengBilijipub publisherAdvances in Engineering and Intelligence Systems2821-02632023-12-0100204112210.22034/aeis.2023.412043.1124186521Numerical Investigation of Motive Pressure on Condensation and Evaporation Process in Steam Ejector of Renewable Refrigeration SystemRakibul Islam0Amir Sohel1Md Faisal Bin Ashab2College of Electrical Engineering and New Energy, Three Gorges University, Yichang, Hubei, ChinaCollege of Electrical Engineering and New Energy, Three Gorges University, Yichang, Hubei, ChinaCollege of Electrical Engineering and New Energy, Three Gorges University, Yichang, Hubei, ChinaIn today's life, it is very necessary to use cooling systems in the domestic and industrial cooling process, and the air-conditioning and refrigeration industry has the highest rate of electrical energy consumption in countries with hot weather. Therefore, it is very important to find a cycle with low energy consumption. Ejector refrigeration cycle can be a suitable option due to low energy consumption and compatibility with the environment. This study investigates the effect of pressure of motive flow on refrigeration cycle’s ejector performance. The k-wSST turbulence model and the non-equilibrium condensation model are used to simulate the ejector. According to the results, the present model can well predict the flow behavior in the ejector. As the pressure of motive flow increases, the minimum pressure and minimum temperature in the ejector decreases and the maximum Mach number increases in the ejector, and the production entropy and COP decrease. The pressure of motive flow has a significant effect on the oblique shocks and shock train. The entrainment ratio, which is one of the most important parameters of the ejector, decreases with increasing pressure of motive flow. As the pressure increases from 1.98 bar to 4.75 bar, the entrainment ratio decreases by 62%, the primary flow rate increases from 0.000693 kg/s to 0.001597 kg/s, and a 130% increase in the primary flow rate is seen.https://aeis.bilijipub.com/article_186521_8b99573510d40ef9e5a333bef9c3ad17.pdfejector refrigeration cyclessteam ejectorentrainment ratioentropy generationcop
spellingShingle Rakibul Islam
Amir Sohel
Md Faisal Bin Ashab
Numerical Investigation of Motive Pressure on Condensation and Evaporation Process in Steam Ejector of Renewable Refrigeration System
Advances in Engineering and Intelligence Systems
ejector refrigeration cycles
steam ejector
entrainment ratio
entropy generation
cop
title Numerical Investigation of Motive Pressure on Condensation and Evaporation Process in Steam Ejector of Renewable Refrigeration System
title_full Numerical Investigation of Motive Pressure on Condensation and Evaporation Process in Steam Ejector of Renewable Refrigeration System
title_fullStr Numerical Investigation of Motive Pressure on Condensation and Evaporation Process in Steam Ejector of Renewable Refrigeration System
title_full_unstemmed Numerical Investigation of Motive Pressure on Condensation and Evaporation Process in Steam Ejector of Renewable Refrigeration System
title_short Numerical Investigation of Motive Pressure on Condensation and Evaporation Process in Steam Ejector of Renewable Refrigeration System
title_sort numerical investigation of motive pressure on condensation and evaporation process in steam ejector of renewable refrigeration system
topic ejector refrigeration cycles
steam ejector
entrainment ratio
entropy generation
cop
url https://aeis.bilijipub.com/article_186521_8b99573510d40ef9e5a333bef9c3ad17.pdf
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AT amirsohel numericalinvestigationofmotivepressureoncondensationandevaporationprocessinsteamejectorofrenewablerefrigerationsystem
AT mdfaisalbinashab numericalinvestigationofmotivepressureoncondensationandevaporationprocessinsteamejectorofrenewablerefrigerationsystem