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Entropy generation vs energy flow due to natural convection in a trapezoidal cavity with isothermal and non-isothermal hot bottom wall
- Source :
- Energy. 37:514-532
- Publication Year :
- 2012
- Publisher :
- Elsevier BV, 2012.
-
Abstract
- A comprehensive understanding of energy flow and entropy generation is needed for an optimal process design via reducing irreversibilities in terms of 'entropy generation'. In this study, analysis on entropy generation during natural convection in a trapezoidal cavity with various inclination angles (phiv<br />=45�, 60� and 90�) have been carried out for an efficient thermal processing of various fluids of industrial importance (Pr=0.015, 0.7 and 1000) in the range of Rayleigh number (10 3-10 5). The total entropy generation (S total), average Bejan number (Be av) and average heat transfer rate (NubOverBar<br />and NulOverBar<br />) have been computed. The comparison of magnitudes of S ? and S ? indicates that maximum entropy generation due to heat transfer (S ?, max) is identical for both Ra=10 3 and Ra=10 5 whereas maximum entropy generation due to fluid friction (S ?, max) is lower for Ra=10 3 and that is higher for Ra=10 5 due to enhanced fluid flow at higher Ra irrespective of phiv<br />and Pr. The total entropy generation (S total) is found to increase with Pr due to increase in S ? with Pr. The non-isothermal heating strategy (case 2) is found to be an energy efficient due to less total entropy generation (S total) values despite its lower heat transfer rate (NubOverBar<br />) based on lesser heating effect than isothermal heating (case 1) for all phiv<br />s. � 2011 Elsevier Ltd.
- Subjects :
- energy dissipation
fluid flow
Trapezoidal cavity
Entropy
Thermodynamics
heating
Entropy generation
Bejan number
Isotherms
Industrial and Manufacturing Engineering
Isothermal process
thermodynamics
heat transfer
Fluid dynamics
Electrical and Electronic Engineering
Entropy (energy dispersal)
Civil and Structural Engineering
Natural convection
Chemistry
Mechanical Engineering
Principle of maximum entropy
isotherm
Building and Construction
Rayleigh number
design method
Pollution
Isothermal heating
Energy efficiency
General Energy
Nonisothermal
thermal convection
Heat transfer
Specific heat
optimization
Subjects
Details
- ISSN :
- 03605442
- Volume :
- 37
- Database :
- OpenAIRE
- Journal :
- Energy
- Accession number :
- edsair.doi.dedup.....82a087d5b15ffb6f97ed76a5079dcc82
- Full Text :
- https://doi.org/10.1016/j.energy.2011.11.003