Skip to main content
U.S. Department of Energy
Office of Scientific and Technical Information

Temperature requirements and corrosion rates in combustion driven hydrogen fluoride supersonic diffusion lasers

Journal Article · · AIAA J.; (United States)
DOI:https://doi.org/10.2514/3.8209· OSTI ID:6317669
A maximum F-atom yield from F2 occurs in a combustion driven hydrogen fluoride supersonic diffusion laser (HFSDL) because the amount of fluorine reacted with hydrogen (or deuterium) continues to increase with temperature after most of the unreacted fluorine has been thermally dissociated. A small decease from the maximum combustor F-atom yield allows a significant decease in the required temperature and in the corrosion rates that uncooled laser nozzles would display. The temperatures that give F-atom yields equal to 95 percent of the maximum values were calculated for typical HFSDL combustor pressures and F-atom mole fractions and the corrosion rates of uncooled nozzles were evaluated at these temperatures. The corrosion rates of materials resistant to fluorine attack at the highest temperatures would allow HFSDL applications or test experiments up to several hours duration.
Research Organization:
Yale University, New Haven, CT
OSTI ID:
6317669
Journal Information:
AIAA J.; (United States), Journal Name: AIAA J.; (United States) Vol. 21; ISSN AIAJA
Country of Publication:
United States
Language:
English

Similar Records

Efficiency of using nitrogen trifluoride as an oxidiser in a supersonic continuous-wave chemical HF laser
Journal Article · Fri Jan 31 23:00:00 EST 2020 · Quantum Electronics (Woodbury, N.Y.) · OSTI ID:23141883

CORROSION ASSOCIATED WITH FLUORINATION IN THE OAK RIDGE NATIONAL LABORATORY FLUORIDE VOLATILITY PROCESS
Technical Report · Mon Jun 19 00:00:00 EDT 1961 · OSTI ID:4051734

Gas dynamics of the active medium of a supersonic cw HF chemical laser
Journal Article · Sat Dec 30 23:00:00 EST 2000 · Quantum Electronics (Woodbury, N.Y.) · OSTI ID:21454702