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Modeling of a liquid nitrogen droplet evaporating inside an immiscible liquid pool

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posted on 2025-01-23, 12:45 authored by Zhuo Zhang, Huayong ZhaoHuayong Zhao, Srinivas Vanapalli
Evaporation of liquid nitrogen in another immiscible liquid occurs in many industrial applications. Existing oversimplified one-dimensional (1D) quasi-steady models, although can quantitatively predict the evaporation rate by introducing an empirical fitting parameter, rely on configurations inconsistent with experimental observation so more rigorous models are required to get in-depth physical insights and improve modeling capability. This study proposes a 2D quasi-steady-state theoretical model, free of fitting parameters, that predicts the bubble growth rate and estimates the heat transfer rate for a liquid nitrogen droplet evaporating inside a liquid pool within the spherical bubble regime. The droplet's shape and position within a spherical bubble are determined by the equilibrium between the gravitational force and the upward pressure force resulting from the vapor flow between the droplet and the pool. The vapor layer thickness is calculated to be on the order of 10 microns. Notably, the primary contribution to heat transfer arises from the lower portion of the droplet, leading to local heat flux values up to approximately six times higher at the bottom compared to the top. The predicted bubble growth is quantitatively consistent with experimental data within the capillary spherical bubble regime. Furthermore, the overall heat transfer rate Q exhibits a distinct scaling relationship with the volume ratio between the bubble and droplet, yielding Q∼(Vb/Vd)−0.1.

Funding

Holland High Tech (TKI-HTSM) via the Dutch Ministry of Economic Affairs and Climate Policy’s PPS bonus scheme for Research and Innovation and Air Liquide for the project ’Cooling Characteristic of Cryogenic Leidenfrost Drops and Solids’ [grant number SBD 2019-114]

History

School

  • Mechanical, Electrical and Manufacturing Engineering

Published in

International Journal of Heat and Mass Transfer

Volume

226

Publisher

Elsevier Ltd

Version

  • VoR (Version of Record)

Rights holder

© The Author(s)

Publisher statement

This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).

Acceptance date

2024-03-12

Publication date

2024-03-25

Copyright date

2024

ISSN

0017-9310

eISSN

1879-2189

Language

  • en

Depositor

Dr Huayong Zhao. Deposit date: 20 June 2024

Article number

125444

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