Author:
Mata Mario R.,Ortiz Brandon,Luhar Dhruv,Evereux Vesper,Cho H. Jeremy
Abstract
AbstractImproving boiling is challenging due to the unpredictable nature of bubbles. One way to enhance boiling is with surfactants, which alter the solid–liquid and liquid–vapor interfaces. The conventional wisdom established by previous studies suggests that heat transfer enhancement is optimized near the critical micelle concentration (CMC), which is an equilibrium property that depends on surfactant type. However, these studies only tested a limited number of surfactants over small concentration ranges. Here, we test a larger variety of nonionic and anionic surfactants over the widest concentration range and find that a universal, optimal concentration range exists, irrespective of CMC. To explain this, we show that surfactant-enhanced boiling is controlled by two competing phenomena: (1) the dynamic adsorption of surfactants to the interfaces and (2) the increase in liquid dynamic viscosity at very high surfactant concentrations. This dynamic adsorption is time-limited by the millisecond-lifetime of bubbles on the boiling surface—much shorter than the timescales required to see equilibrium behaviors such as CMC. At very high concentrations, increased viscosity inhibits rapid bubble growth, reducing heat transfer. We combine the effects of adsorption and viscosity through a simple proportionality, providing a succinct and useful understanding of this enhancement behavior for boiling applications.
Funder
University of Nevada, Las Vegas
Koshee Innovation
Publisher
Springer Science and Business Media LLC
Reference50 articles.
1. Kandlikar, S. G. & Balasubramanian, P. An extension of the flow boiling correlation to transition, laminar, and deep laminar flows in minichannels and microchannels. Heat Transfer Eng. 25, 86–93 (2004).
2. Shiferaw, D., Huo, X., Karayiannis, T. G. & Kenning, D. B. R. Examination of heat transfer correlations and a model for flow boiling of R134a in small diameter tubes. Int. J. Heat Mass Transf. 50, 5177–5193 (2007).
3. Zhang, W., Hibiki, T. & Mishima, K. Correlation for flow boiling heat transfer in mini-channels. Int. J. Heat Mass Transf. 47, 5749–5763 (2004).
4. Zhang, W., Hibiki, T., Mishima, K. & Mi, Y. Correlation of critical heat flux for flow boiling of water in mini-channels. Int. J. Heat Mass Transf. 49, 1058–1072 (2006).
5. Fan, Y., Fang, J. & Bolotnov, I. Complex bubble deformation and break-up dynamics studies using interface capturing approach. Exp. Comput. Multiphase Flow 2021(33), 139–151 (2020).
Cited by
6 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献