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Experimental evidences of distinct heat transfer regimes in pulsating heat pipes (PHP)
Authors:Stéphane Lips  Ahlem Bensalem  Yves Bertin  Vincent Ayel  Cyril Romestant  Jocelyn Bonjour
Affiliation:1. Université de Lyon, CNRS, INSA-Lyon, CETHIL, UMR5008, F-69621 Villeurbanne, France;2. Université Lyon 1, F-69622, France;3. LET, UMR CNRS ENSMA 6608, 1, Avenue Clément ADER 86961 Futuroscope CHASSENEUIL Cedex, France;1. University of Bergamo, Engineering Dep., Viale Marconi 5, 24044 Dalmine, BG, Italy;2. University of Pisa, DESTEC, Largo L. Lazzarino 2, 56122 Pisa, PI, Italy;3. University of Brighton, School of Computing, Engineering and Mathematics, Lewes Road, BN2 4GJ Brighton, UK;1. School of Energy Science and Engineering, Harbin Institute of Technology, Harbin 150001, China;2. Sino-French Institute of Nuclear Engineering and Technology, Sun Yat-Sen University, Zhuhai 519082, China;1. Research Center of Fluid Machinery Engineering and Technology, Jiangsu University, Zhenjiang 212013, China;2. School of Energy and Power Engineering, Jiangsu University, Zhenjiang 212013, China
Abstract:Various experiments were conducted on two full-size pulsating heat pipes (PHP) which differed from their diameter, number of turns, and working fluid. The analysis of the experimental results showed two kind of operating curves (overall thermal resistance vs. heat rate): for low heat fluxes, the curve is irregular and the PHP performance is sensitive to the orientation. For high heat fluxes, the operating curve is smooth and independent from the orientation. To contribute to the analysis of these results, experiments were conducted at the scale of a single branch of a PHP. An oscillating motion was imposed to a single liquid plug surrounded by two vapour slugs in a capillary tube and high speed visualizations were performed. The test section was either adiabatic or heated. The adiabatic experiments brought to the fore the importance of dynamic contact angles in the flow and the dissymmetry between the advancing and receding contact angle. The non-adiabatic experiments showed that at low flux, the flow is disturbed by bubble nucleation, while at high heat flux, the main heat transfer mechanism is thin film evaporation, with a completely different thermal and hydrodynamic behaviour.
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