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CFD Modeling of Bi-Directional PMD inside Cryogenic Propellant Tanks Onboard Parabolic Flights Future cryogenic propulsion systems will require efficient methods with which to transfer cryogenic propellants from a depot storage tank to a customer receiver tank to minimize cost and maximize reusability. The Reduced Gravity Cryogenic Transfer project is currently developing advanced cryogenic fluid management technology and developing and validating new numerical models for three phases of transfer: line chilldown, tank chilldown, and tank fill. Additionally, multiple liquid nitrogen (LN2) parabolic flight transfer rigs are being designed by universities and NASA to investigate the gravitational sensitivities that exist in these three technologies. In order to maximize the collection of low-g data during flights, it is required to extract as much (LN2 as possible from the supply tank, despite variable gravity levels. The purpose of this paper is to present computational fluid dynamics (CFD) volume of fluid simulations of (LN2 behavior in the supply tank onboard parabolic flights to validate the optimal design of a bi-directional propellant management device (PMD) using the commercial software FLOW-3D. A parametric study is conducted on the effects of gravity level, fill level, pore size, open area, thickness, and type of baffle on PMD performance. Based on results, the PMD as designed exceeds the targeted expulsion efficiency.
Document ID
20260007283
Acquisition Source
Glenn Research Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Jason Hartwig
(Glenn Research Center Cleveland, United States)
Narottama Esser
(University of Florida Gainesville, United States)
Shreykumar Jain
(Georgia Tech Research Institute Atlanta, United States)
David Souders
(Flow Sciences Inc.)
Allen Prasad Varghese ORCID
(New Jersey Institute of Technology Newark, United States)
Angelo Tafuni
(New Jersey Institute of Technology Newark, United States)
Date Acquired
August 4, 2026
Publication Date
October 25, 2023
Publication Information
Publication: Journal of Spacecraft and Rockets
Publisher: American Institute of Aeronautics and Astronautics
Volume: 61
Issue: 1
Issue Publication Date: January 1, 2024
ISSN: 0022-4650
e-ISSN: 1533-6794
Subject Category
Fluid Mechanics and Thermodynamics
Funding Number(s)
WBS: 80NSSC21P0743
CONTRACT_GRANT: 012873.05.02.01.22
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
Single Expert
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