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Framework for Analyzing the Complex Interactions Between Spacecraft Motion and Slosh Dynamics in Low-G EnvironmentsThe fuel-to-dry-mass ratio of spacecraft continues to grow as new human spaceflight missions target destinations from Earth. Large amounts of liquid propellant can lead to significant coupling between the rigid-body dynamics of the spacecraft and the motion of the fuel within its storage tank. The present work gives an overview of the
dynamic features and a flowchart for a method of simulating the motion of a spacecraft with fuel slosh inside a cylindrical, domed tank in a low-g environment. The method involves modeling the liquid propellant as a particle that transfers momentum to the spacecraft through perfectly inelastic collisions with the tank wall. The foundation of the modeling methodology is the approach taken during the Apollo program used to predict the effect of fuel slosh on the complex motion exhibited by the Service Module following separation from the Crew Module. This paper
discusses the motivation, methodology, and conclusions from the Apollo-era method, and subsequently builds upon it by incorporating corrections to the derivation of the dynamics and filling in the gaps due to unavailability of the detailed contractor report and simulation code. The results presented in this paper provide an example that demonstrates the effect that fuel slosh can have on the trajectory of a spacecraft in a low-g environment.
Document ID
20220013108
Acquisition Source
Langley Research Center
Document Type
Presentation
Authors
William J Elke III
(University of Minnesota Minneapolis, Minnesota, United States)
Jing Pei
(Langley Research Center Hampton, Virginia, United States)
Carlos M Roithmayr
(Langley Research Center Hampton, Virginia, United States)
Ryan J Caverly
(University of Minnesota Minneapolis, Minnesota, United States)
Date Acquired
August 24, 2022
Subject Category
Astronautics (General)
Meeting Information
Meeting: 73rd International Astronautical Congress
Location: Paris
Country: FR
Start Date: September 18, 2022
End Date: September 22, 2022
Sponsors: International Astronautical Congress
Funding Number(s)
WBS: 954879.06.03.06.23
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
NASA Peer Committee
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