Flow visualization, critical heat flux enhancement, and transient characteristics in pool boiling using nanofluids
| dc.contributor.author | Hegde, R.N. | |
| dc.contributor.author | Rao, S.S. | |
| dc.contributor.author | Reddy, R.P. | |
| dc.date.accessioned | 2026-02-05T09:35:19Z | |
| dc.date.issued | 2012 | |
| dc.description.abstract | This paper presents the experimental outcome of a study of the pool boiling heat transfer characteristics of alumina and CuO nanofluid in distilled water using a 0.19 mm diameter NiCr wire. A series of experiments were conducted in order to visualize the flow, critical heat flux (CHF) enhancement, and transient characteristics of nanofluid. The boiling phenomenon was visualized using a 0.1 g/l concentration of alumina nanofluid. The average bubble diameter was measured and was found to increase with increased heat flux. The average bubble contact angle decreased from 69° during the initial stages of boiling to 33° at CHF. Massive vapour bubbles were observed on the test heater surface near the CHF, inducing vapour blankets and forming hot/dry spots. The increase in the CHF could be well explained by the hot/dry spot theory. Pool boiling experiments conducted using low volume concentrations of CuO-water nanofluid at atmospheric pressure in distilled water showed an increase in the CHF by 30 % at a 0.3 g/l concentration. The transient behaviour of nanofluid, examined by exposing the heater surface at a constant heat flux of 700 kW/m 2, indicated CHF enhancement of 5.21 % to 6.77 % for the two time durations. Based on the experimental investigations, it was concluded that the CHF enhancement is due to nanoparticle coating, which changes the thickness of the surface as a function of time and surface wettability and corroborates the hot/dry spot theory. Copyright © 2012 by ASTM International. | |
| dc.identifier.citation | Journal of ASTM International, 2012, 9, 5, pp. - | |
| dc.identifier.uri | https://doi.org/10.1520/JAI104443 | |
| dc.identifier.uri | https://idr.nitk.ac.in/handle/123456789/27013 | |
| dc.subject | Bubble diameter | |
| dc.subject | CHF | |
| dc.subject | CHF enhancement | |
| dc.subject | Constant heat flux | |
| dc.subject | CuO nanofluid | |
| dc.subject | Distilled water | |
| dc.subject | Experimental investigations | |
| dc.subject | Function of time | |
| dc.subject | Heater surface | |
| dc.subject | Initial stages | |
| dc.subject | Nanofluids | |
| dc.subject | Nanoparticle coatings | |
| dc.subject | Pool boiling | |
| dc.subject | Pool boiling heat transfer | |
| dc.subject | Surface wettability | |
| dc.subject | Time duration | |
| dc.subject | Transient characteristic | |
| dc.subject | Vapour bubbles | |
| dc.subject | Volume concentration | |
| dc.subject | Alumina | |
| dc.subject | Atmospheric pressure | |
| dc.subject | Contact angle | |
| dc.subject | Experiments | |
| dc.subject | Flow visualization | |
| dc.subject | Heat flux | |
| dc.subject | Lakes | |
| dc.subject | Phase transitions | |
| dc.subject | Table lookup | |
| dc.subject | Vapors | |
| dc.subject | Nanofluidics | |
| dc.title | Flow visualization, critical heat flux enhancement, and transient characteristics in pool boiling using nanofluids |
