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Counter-Flow RHVT (C-RHVT): An Experimental and CFD Numerical Study
Details
The design of innovative Ranque-Hilsch vortex tube (RHVT) for the development of green and low cost refrigeration and air conditioning systems has become increasingly important in cooling (and heating) process industries. In this light improving the heat transfer mechanism and thermal efficiency (cooling optimization) of the RHVT has been an ongoing concern. This research demonstrates how using different turbulence models may affect the temperature detachment (the temperature diminution of cold air inside straight counter- flow Ranque-Hilsch Vortex Tube (RHVT). The code is utilized to find the optimized turbulence model for energy separation by comparison with the experimental data of the setup. To obtain the results with a minimum error, ten turbulence models have been investigated in steady state and transient time-dependence modes. Results show that RNG k- turbulence model has the best correspondence with the obtained experimental data from the setup; therefore, by using a RNG k- turbulence model with respect to Finite Volume Method (FVM) and based on the Computational Fluid Dynamic (CFD), all the computations have been carried out.
Autorentext
Como Editor da Current Analysis on Energy & Environmental Sciences (CAEE), publiquei vários artigos e livros de Investigação Científica nas áreas de Política, Negócios & Gestão, Economia e Engenharia.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09786139458240
- Sprache Englisch
- Genre Maschinenbau
- Anzahl Seiten 88
- Größe H220mm x B150mm x T6mm
- Jahr 2019
- EAN 9786139458240
- Format Kartonierter Einband
- ISBN 6139458242
- Veröffentlichung 12.03.2019
- Titel Counter-Flow RHVT (C-RHVT): An Experimental and CFD Numerical Study
- Autor Adib Bazgir , Nader Nabhani , Ali Heydari
- Untertitel Heat transfer and thermal separation enhancement by using various turbulence models
- Gewicht 149g
- Herausgeber LAP LAMBERT Academic Publishing