Reaction of Hydrazine and Nitrogen Tetroxide in a Low-Pressure Environment
Low-pressure environment reaction of hydrazine and nitrogen tetroxide
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Low-pressure environment reaction of hydrazine and nitrogen tetroxide
The effect of some additives on the burning rate of liquid hydrazine in a nitrogen atmosphere
Reaction of hydrazine and nitrogen tetroxide at pressures of .001 mm hg in a steel vacuum tank
Radiation testing monomethyl hydrazine propellant for rift project
Ignition delay time of hydrazine nitrogen tetroxide system in presence of various additives
Hydrazine and derivations affecting carbon dioxide respiratory pattern of various metabolic substrates in rats
Performance tests of shower-head, triplet, and like-on-like liquid hydrazine-fluorine injectors in uncooled rocket engine
Analytic study of catalytic reactors for hydrazine decomposition
Liquid hydrazine decomposition process to determine what chemical or physical changes may be occurring that cause breaks in burning rate/ pressure curves, measuring flame temperature and light emission
Molecular elimination of nitrogen from hydrazine from single molecule and not radical-radical combination
Mixing and reaction studies of hydrazine and nitrogen tetroxide using photographic and spectral techniques
Nitrogen tetroxide and hydrazine compatibility with aluminum alloy storage tanks
Synthesis of fluoropolymers for elastomeric bladders for containment of nitrogen tetroxide and hydrazine fuels
Remotely-operated measuring apparatus for determining freezing point curves for solutions of ammonium perchlorate in hydrazine
Monopropellant hydrazine thrustor system
Effect of additives on hydrazine nitrogen trioxide droplet flame structure and burning rate
Atomization, mixing and reaction characteristics of hydrazine and nitrogen tetroxide injected from quadlet element
A Miniature Mass Spectrometer (MMS) with a focal plane (Mattauch-Herzog) geometry has been developed at the Jet Propulsion Laboratory. The MMS has the potential to meet the NASA requirements of 10 parts per billion sensitivity for Hydrazine detection, as well as the requirements for instant response, portability, and low maintenance.