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Decoupling Surface Topography from Gravitational Acceleration in Cryogenic Pool BoilingBoiling heat transfer is governed by a complex interplay between surface conditions and gravitational acceleration. To isolate the sole effects of gravity, we investigated the pool boiling characteristics of liquid nitrogen on atomically smooth silicon dioxide (SiO2) surfaces under terrestrial (1-g) and reduced gravity (0±0.02 g) conditions achieved via parabolic flight. Our results quantify a drastic reduction in the critical heat flux (CHF) in reduced gravity, decreasing from 16.15 W/cm2 at 1-g to 5−6 W/cm2 at μ-g due to the suppression of buoyancy. Conversely, we observed a distinct increase in the heat transfer coefficient (HTC) in the reduced gravity condition prior to CHF. By utilizing a surface with a maximum peak-to-valley height of ≈36.7 nm and low contact angle hysteresis (<10°), we confirm this HTC enhancement is an intrinsic response to the gravitational environment, decoupled from surface-defect-induced nucleation. These findings demonstrate that the influence of surface topography is significantly more prominent in reduced gravity than in terrestrial conditions, providing a critical baseline for rationalizing the design of cryogenic thermal management systems in space and quantum applications.
Document ID
20260001409
Acquisition Source
Glenn Research Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Mohammad S Reza
(University of Florida Gainesville, United States)
Philip Ignatoff
(University of Florida Gainesville, United States)
Jimmy Almacddissi
(University of Florida Gainesville, United States)
Jason Hartwig ORCID
(Glenn Research Center Cleveland, United States)
J N Chung ORCID
(University of Florida Gainesville, United States)
Youngsup Sung
(University of Florida Gainesville, United States)
Date Acquired
February 13, 2026
Publication Date
July 8, 2026
Publication Information
Publication: npj Microgravity
Publisher: Nature Research
ISSN: 2373-8065
e-ISSN: 2373-8065
Subject Category
Fluid Mechanics and Thermodynamics
Funding Number(s)
WBS: 633369.07.09.04.22
CONTRACT_GRANT: 80NSSC20K0392
CONTRACT_GRANT: 80NSSC22K0562
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
Single Expert
Keywords
Liquid nitrogen
pool boiling
microgravity
parabolic flight
coated surface
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