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High-temperature LDV seed particle developmentThe feasibility of developing a method for making monodisperse, unagglomerated spherical particles greater than 50 nm in diameter was demonstrated. Carbonaceous particles were made by pyrolyzing ethylene with a pulsed CO2 laser, thereby creating a non-equilibrium mixture of carbon, hydrogen, hydrocarbon vapors, and unpyrolyzed ethylene. Via a complex series of reactions, the carbon and hydrocarbon vapors quickly condensed into the spherical particles. By cooling and dispersing them in a supersonic expansion immediately after their creation, the hot newly-formed spheres were prevented from colliding and coalescing, thus preventing the problem of agglomeration which as plagued other investigators studying laser-simulated particle formation. The cold particles could be left suspended in the residual gases indefinitely without agglomerating. Their uniform sizes and unagglomerated nature were visualized by collecting the particles on filters that were subsequently examined using electron microscopy. It was found the mean particle size can be coarsely controlled by varying the initial ethylene pressure, and can be finely controlled by varying the fluence (energy/unit area) with which the laser irradiates the gas. The motivating application for this research was to manufacture particles that could be used as laser Doppler velocimetry (LDV) seeds in high-temperature high-speed flows. Though the particles made in this program will not evaporate until heated to about 3000 K, and thus could serve as LDV seeds in some applications, they are not ideal when the hot atmosphere is also oxidizing. In that situation, ceramic materials would be preferable. Research performed elsewhere has demonstrated that selected ceramic materials can be manufactured by laser pyrolysis of appropriate supply gases. It is anticipated that, when the same gases are used in conjunction with the rapid cooling technique, unagglomerated spherical ceramic particles can be made with little difficulty. Such particles would also be valuable to manufacturers of ceramic or abrasive products, and this technique may find its greatest commercial potential in those areas.
Document ID
19890014480
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Frish, Michael B.
(Physical Sciences, Inc. Andover, MA, United States)
Pierce, Vicky G.
(Physical Sciences, Inc. Andover, MA, United States)
Date Acquired
September 5, 2013
Publication Date
May 1, 1989
Subject Category
Instrumentation And Photography
Report/Patent Number
PSI-2062/TR-890
NASA-CR-182265
NAS 1.26:182265
Report Number: PSI-2062/TR-890
Report Number: NASA-CR-182265
Report Number: NAS 1.26:182265
Accession Number
89N23851
Funding Number(s)
CONTRACT_GRANT: NAS3-25284
PROJECT: RTOP 324-01-00
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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