Nonlinear Slosh Damping Testing and Analysis for Launch Vehicle Propellant TanksPropellant tank slosh damping models for launch vehicle ascent analysis typically employ linear models for bare-wall damping, or assume a single, low-amplitude wave height for baffled configurations. A higher fidelity damping model would incorporate nonlinear effects to increase damping as slosh wave amplitude increases. This paper provides an overview of a technical assessment performed by the NASA Engineering and Safety Center (NESC) to evaluate lateral slosh damping as a function of lateral force (or wave) amplitude for multiple tank configurations. The increased fidelity of nonlinear slosh damping models, if leveraged, has the potential to reduce over-conservatism associated with the use of linear slosh damping models. This can provide design flexibility to enhance launch vehicle flight control performance, reduce baffle design requirements and/or increase robustness in targeted areas such as control-structure interaction during ascent.
Document ID
20200002926
Acquisition Source
Langley Research Center
Document Type
Conference Paper
Authors
Tannen S VanZwieten (Langley Research Center Hampton, Virginia, United States)
Jacob M Brodnick (Jacobs (United States) Dallas, Texas, United States)
Shane Reese (Brigham Young University Provo, Utah, United States)
Michael Ruth (Northrop Grumman (United States) Falls Church, Virginia, United States)
Brandon Marsell (Kennedy Space Center Merritt Island, Florida, United States)
Russel A Parks (Marshall Space Flight Center Redstone Arsenal, Alabama, United States)
Date Acquired
April 22, 2020
Publication Date
January 6, 2020
Publication Information
Publication: AIAA SciTech 2020 Forum
Publisher: American Institute of Aeronautics and Astronautics