Experimental study of fluid phase equilibrium along thermodynamically optimized interface of a stored liquid container

© 2016 by ASME. This experimental study presents the thermal optimization of a storage container partially filled with liquid (water) with an ullage region above the liquid composed of water vapor and air. The basic purpose of this thermal optimization was to qualitatively explore the design conditi...

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Main Authors: Rakshit, D., Narayanaswamy, Ramesh, Thiagarajan, K.
Format: Journal Article
Published: The American Society of Mechanical Engineers 2016
Online Access:http://hdl.handle.net/20.500.11937/5308
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author Rakshit, D.
Narayanaswamy, Ramesh
Thiagarajan, K.
author_facet Rakshit, D.
Narayanaswamy, Ramesh
Thiagarajan, K.
author_sort Rakshit, D.
building Curtin Institutional Repository
collection Online Access
description © 2016 by ASME. This experimental study presents the thermal optimization of a storage container partially filled with liquid (water) with an ullage region above the liquid composed of water vapor and air. The basic purpose of this thermal optimization was to qualitatively explore the design conditions that minimize the heat leaks from the storage tank to the external environment at a lower temperature than the liquid in the storage container. Two symbiotic physical parameters-interfacial mass transfer and the entropy generated by the system-influence the thermal performance of the storage container. These two symbiotic physical parameters were simultaneously considered when optimizing the system. The mass transfer estimation involved the determination of (i) the liquid-vapor interfacial temperature, (ii) the fractional concentration of the evaporating liquid present in the gaseous state, and (iii) the surface area of the liquid-vapor interface. The entropy of the system was estimated separately by considering the entropy of the diabatic saturated liquid and the ullage vapor. A synergistic objective function was subsequently composed based on the penalty involved in deviation from the individual optima, thus determining a holistic optimum. The results show that stored liquids exhibit better second-law efficiency in open containers than in containers that are closed by a lid. The primary factor that influences this optimum is the lid condensation that occurs in closed containers at the 50% filling level.
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institution Curtin University Malaysia
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publishDate 2016
publisher The American Society of Mechanical Engineers
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spelling curtin-20.500.11937-53082017-09-13T14:42:51Z Experimental study of fluid phase equilibrium along thermodynamically optimized interface of a stored liquid container Rakshit, D. Narayanaswamy, Ramesh Thiagarajan, K. © 2016 by ASME. This experimental study presents the thermal optimization of a storage container partially filled with liquid (water) with an ullage region above the liquid composed of water vapor and air. The basic purpose of this thermal optimization was to qualitatively explore the design conditions that minimize the heat leaks from the storage tank to the external environment at a lower temperature than the liquid in the storage container. Two symbiotic physical parameters-interfacial mass transfer and the entropy generated by the system-influence the thermal performance of the storage container. These two symbiotic physical parameters were simultaneously considered when optimizing the system. The mass transfer estimation involved the determination of (i) the liquid-vapor interfacial temperature, (ii) the fractional concentration of the evaporating liquid present in the gaseous state, and (iii) the surface area of the liquid-vapor interface. The entropy of the system was estimated separately by considering the entropy of the diabatic saturated liquid and the ullage vapor. A synergistic objective function was subsequently composed based on the penalty involved in deviation from the individual optima, thus determining a holistic optimum. The results show that stored liquids exhibit better second-law efficiency in open containers than in containers that are closed by a lid. The primary factor that influences this optimum is the lid condensation that occurs in closed containers at the 50% filling level. 2016 Journal Article http://hdl.handle.net/20.500.11937/5308 10.1115/1.4034255 The American Society of Mechanical Engineers restricted
spellingShingle Rakshit, D.
Narayanaswamy, Ramesh
Thiagarajan, K.
Experimental study of fluid phase equilibrium along thermodynamically optimized interface of a stored liquid container
title Experimental study of fluid phase equilibrium along thermodynamically optimized interface of a stored liquid container
title_full Experimental study of fluid phase equilibrium along thermodynamically optimized interface of a stored liquid container
title_fullStr Experimental study of fluid phase equilibrium along thermodynamically optimized interface of a stored liquid container
title_full_unstemmed Experimental study of fluid phase equilibrium along thermodynamically optimized interface of a stored liquid container
title_short Experimental study of fluid phase equilibrium along thermodynamically optimized interface of a stored liquid container
title_sort experimental study of fluid phase equilibrium along thermodynamically optimized interface of a stored liquid container
url http://hdl.handle.net/20.500.11937/5308