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Numerical Investigation of Microgravity Tank Pressure Rise Due to BoilingThe ability to control self-pressurization in cryogenic storage tanks is essential for NASAs long-term space exploration missions. Predictions of the tank pressure rise in Space are needed in order to inform the microgravity design and optimization process. Due to the fact that natural convection is very weak in microgravity, heat leaks into the tank can create superheated regions in the liquid. The superheated regions can instigate microgravity boiling, giving rise to pressure spikes during self-pressurization. In this work, a CFD model is developed to predict the magnitude and duration of the microgravity pressure spikes. The model uses the Schrage equation to calculate the mass transfer, with a different accommodation coefficient for evaporation at the interface, condensation at the interface, and boiling in the bulk liquid. The implicit VOF model was used to account for the moving interface, with bounded second order time discretization. Validation of the models predictions was carried out using microgravity data from the Tank Pressure Control Experiment, which flew aboard the Space Shuttle Mission STS-52. Although this experiment was meant to study pressurization and pressure control, it underwent boiling during several tests. The pressure rise predicted by the CFD model compared well with the experimental data. The ZBOT microgravity experiment is scheduled to fly on February 2016 aboard the ISS. The CFD model was also used to perform simulations for setting parametric limits for the Zero-Boil-Off Tank (ZBOT) Experiments Test Matrix in an attempt to avoid boiling in the majority of the test runs that are aimed to study pressure increase rates during self-pressurization. *Supported in part by NASA ISS Physical Sciences Research Program, NASA HQ, USA
Document ID
20150023104
Acquisition Source
Glenn Research Center
Document Type
Presentation
Authors
Hylton, Sonya
(Apogee Engineering, LLC Colorado Springs, CO, United States)
Ibrahim, Mounir
(Cleveland State Univ. Cleveland, OH, United States)
Kartuzova, Olga
(Apogee Engineering, LLC Colorado Springs, CO, United States)
Kassemi, Mohammad
(Case Western Reserve Univ. Cleveland, OH, United States)
Date Acquired
December 15, 2015
Publication Date
November 11, 2015
Subject Category
Fluid Mechanics And Thermodynamics
Numerical Analysis
Report/Patent Number
GRC-E-DAA-TN27700
Report Number: GRC-E-DAA-TN27700
Meeting Information
Meeting: Annual Meeting of the American Society for Gravitational and Space Research (ASGSR)
Location: Alexandria, WV
Country: United States
Start Date: November 11, 2015
End Date: November 14, 2015
Sponsors: American Society for Gravitational and Space Research
Funding Number(s)
WBS: WBS 904211.04.02.20.12
CONTRACT_GRANT: NNC13BA10B
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
pressure rise
boiling
cryogenic fluid storage
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