DocumentCode :
1235608
Title :
Dynamics of a finite liquid oxygen column in a pulsed magnetic field
Author :
Youngquist, Robert C. ; Immer, Christopher D. ; Lane, John E. ; Simpson, James C.
Author_Institution :
Kennedy Space Center, NASA, FL, USA
Volume :
39
Issue :
4
fYear :
2003
fDate :
7/1/2003 12:00:00 AM
Firstpage :
2068
Lastpage :
2073
Abstract :
Current technology for pumping liquid oxygen (LOX)-the corrosive, highly explosive, cryogenic fluid used as the oxidizing agent in many space launch vehicles-involves traditional mechanisms such as impellers and rotors. The moving parts that are in contact with the fluid, as well as the seals around the pump, are potential failure points. These parts require special attention to protect against a reaction with LOX. We have developed a method to use pulsed magnetic fields to pump finite quantities of LOX that requires no moving parts in contact with the fluid. The equipment for this pumping technology is potentially nonintrusive and may be lighter in weight than existing mechanical pumps. Here, we compute equations of motion using a finite-difference technique, predicting the movement of a finite-length column of LOX in response to a pulsed magnetic field. We compare the calculated dynamics to experiment for various configurations.
Keywords :
finite difference methods; fluid dynamics; magnetic fields; magnetic forces; oxygen; paramagnetic materials; pumps; solenoids; space vehicles; O2; axially symmetric solenoid; corrosive fluid; cryogenic fluid; equations of motion; explosive fluid; finite liquid oxygen column dynamics; finite-difference technique; finite-length column movement; liquid O pumping; magnetic force; paramagnetic fluids; pulsed magnetic field; pumping technology; space launch vehicles-involves; Cryogenics; Explosives; Fluid dynamics; Impellers; Magnetic fields; Magnetic liquids; Pumps; Seals; Space technology; Vehicle dynamics;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2003.812722
Filename :
1211184
Link To Document :
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