A Double Pipe Heat Exchanger Design and Optimization for Cooling an Alkaline Fuel Cell System
Authors
Abstract:
In the presented research, heat transfer of a mobile electrolyte alkaline fuel cell (AFC) (which the electrolyte has cooling role of system) has been considered. Proper control volumes of system with specific qualification have been chosen. Consequently, heat and mass transfer in control volumes have been assessed. Considerations on them and contributed models lead to approve a double tube heat exchanger as energy sink. Design of this heat exchanger is dependent on heat transfer conditions and related equations. A composite system of alkaline fuel cell and peripheral equipment has been used. Then the equations of all steps have been integrated. Furthermore, the optimization codes have been developed to propose best operation point of system, minimizing total cost and determining the heat exchanger dimensions, flow rates and temperatures and in this manner the software ‘GAMS’ was employed. In the results, optimum electrolyte inlet and outlet temperature obtained 73˚C and 40˚C respectively; and the heat exchanger total area with minimizing the cost model is rendered to 0.07 m2. Finally, parametric analysis for variation of temperature, length and diameter of heat exchanger, pressure drop, total cost and performance of planned combined system has been studied. It can be concluded that cooling of system is very important because the efficiency of system reduces with temperatures rising. A promising fact of increasing overall efficiency of system regards to reducing electrolyte temperature demonstrate reducing electrolyte temperature in the range of 70 to 40 oC, concluded 2% overall system efficiency increasing.
similar resources
a double pipe heat exchanger design and optimization for cooling an alkaline fuel cell system
in the presented research, heat transfer of a mobile electrolyte alkaline fuel cell (afc) (which the electrolyte has cooling role of system) has been considered. proper control volumes of system with specific qualification have been chosen. consequently, heat and mass transfer in control volumes have been assessed. considerations on them and contributed models lead to approve a double tube heat...
full textAn experimental investigation of heat transfer of Fe2O3/Water nanofluid in a double pipe heat exchanger
One way to increase the heat transfer is to use perforated twisted tapes with different hole diameters, which largely improve heat transfer with an increase in the heat transfer area at the constant volume and more mixed flow. In the previous studies, the effect of nanofluids with perforated twisted tapes is less studied. In this work, the performance of water / iron oxide nanofluid in a double...
full textAn experimental investigation of heat transfer of Fe2O3/Water nanofluid in a double pipe heat exchanger
One way to increase the heat transfer is to use perforated twisted tapes with different hole diameters, which largely improve heat transfer with an increase in the heat transfer area at the constant volume and more mixed flow. In the previous studies, the effect of nanofluids with perforated twisted tapes is less studied. In this work, the performance of water / iron oxide nanofluid in a double...
full textHeat Transfer of Nanofluid in a Double Pipe Heat Exchanger
This paper investigates the enhancement of heat transfer coefficient and Nusselt number of a nanofluid containing nanoparticles (γ-AL2O3) with a particle size of 20 nm and volume fraction of 0.1%-0.3% (V/V). Effects of temperature and concentration of nanoparticles on Nusselt number changes and heat transfer coefficient in a double pipe heat exchanger with counter turbulent flow are investigate...
full textLaminar Flow Heat Transfer of a Pseudoplastic Fluid through a Double Pipe Heat Exchanger
An experimental study was carried out to obtain the mean convective heat transfer coefficient of aqueous carboximethyl cellulose (CMC) solutions in double-pipe heat <span style="font-size: 10pt; color:...
full textHeat transfer enhancement due to air bubble injection into a horizontal double pipe heat exchanger
If an air flow is injected into a liquid fluid, many ambulant air bubbles are formed inside the fluid. Air bubbles move inside the liquid fluid because of the buoyancy force, and the mobility of these air bubbles makes sizable commixture and turbulence inside the fluid. This mechanism was employed to enhance the heat transfer rate of a horizontal double pipe heat exchanger in this paper. Howeve...
full textMy Resources
Journal title
volume 1 issue 4
pages 223- 231
publication date 2015-09-01
By following a journal you will be notified via email when a new issue of this journal is published.
Hosted on Doprax cloud platform doprax.com
copyright © 2015-2023