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Decomposing Nitrous Oxide Thruster using Dielectric Barrier Discharge Project

Completed TRL 2 (started at 2, targeting 3)

Description

One of NASA’s Grand Challenges is to design more efficient propulsion systems. The decomposing nitrous thruster with a dielectric barrier discharge is only one step away from the simplicity of cold gas thrusters, yet offers a theoretical Isp of 200 seconds – closer to the performance of monopropellant technologies.
 

The University of Maryland is proposing to use a dielectric barrier discharge (DBD) as a means to dissociate N2O. DBD uses alternating high voltage differences between two electrodes to create strong electric fields. One or both of the electrodes is covered in a dielectric, and a gap in between allows gas to pass through. Nitrous Oxide sent through the gap between the electrodes has its free electrons accelerated by the large E-field, and in the process the electrons collide with N2O molecules.
 

Benefits

Small spacecraft with low power budgets and small Delta V requirements

Details

Technology areaPropulsion Systems > Chemical Space Propulsion > Cold Gas
ProgramCenter Independent Research & Development: GSFC IRAD (GSFC IRAD)
Lead organizationGoddard Space Flight Center, Greenbelt, MD
Start date2011-10-01
End date2012-09-01

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