Experience in investigation of components of alkali-metal-vapor space power systems.
Reactor powered alkali metal vapor turbogenerator power system component and alkali metal loop operation performance
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Reactor powered alkali metal vapor turbogenerator power system component and alkali metal loop operation performance
Nucleate boiling instability of alkali metals noting effects of surface material, chemical treatment, heat flux and cavity geometry
Nucleate boiling instability of alkali metals noting effects of surface material, chemical treatment, heat flux and cavity geometry
Evaluation of refractory metal alloy metering and isolation valves for alkali metal service at 1900 F
The mechanisms of mass transport of an alkali metal through porous metal electrodes in alkali metal thermal-to-electric converter AMTEC cells is important in optimizing these high current density devices, but also affords the opportunity to investigate a variety of simple mass transport modes at high temperatures via electrochemical techniques. We have previously reported evidence of ionic, free molecular flow, and surface transport of sodium in several types of AMTEC electrodes. Quantitative investigations of Na transport through WPt(sub 3.5) via surface or grain boundary diffusion, and K transport through porous Mo electrodes by free molecular flow, over large ranges of temperature have been performed. WPt(sub 3.5) has especially low transport impedance over the 950 to 1200K temperature range. New results are the Na through porous WPt(sub 3.5) and K through porous Mo diffusion rates and mechanisms.
Analysis of oxygen in liquid alkali metals
Alkali metal ion mobility in metal vapors
A method is described for producing alkali metal dispersions of high purity. The dispersions are prepared by varying the equilibrium solubility of the alkali metal in a suitable organic solvent in the presence of aromatic hydrocarbons. The equilibrium variation is produced by temperature change. The size of the particles is controlled by controlling the rate of temperature change.
Analysis of oxygen in liquid alkali metals
Cavitation damage in liquid alkali metal pumps for space power systems
Test method for determining condensing heat transfer characteristics of liquid alkali metals
Evacuated apparatus determines the alkali oxide content of an alkali metal by separating the metal from the oxide by amalgamation with mercury. The apparatus prevents oxygen and moisture from inadvertently entering the system during the sampling and analytical procedure.
Fermi surface data of alkali metals interpreted in terms of interaction between conduction electrons and ionic lattice for deducing partial wave phase shifts
The basic performance of Alkali Metal Thermal-to-Electric Converter (AMTEC) cells is well understood, and quantitative modeling of the electrode performance has been carried out. Tests have been carried out to evaluate the high temperature performance of critical AMTEC components. Progress made in understanding the relative performance of AMTEC components, such as electrodes, electrolytes, working fluids, and seals, as device operating temperature is varied is discussed. Most metallic components are especially subject to corrosion in hot liquid alkali metals containing dissolved oxides. Stability issues of AMTEC components may be addressed by life testing, accelerated testing, and modeling based on known kinetic and thermochemical data.
Analytical methods for oxygen in liquid alkali metals
Theoretical analysis of thermally regenerative bimetallic cells with alkali metal anodes shows a relation between the current drawn and the rate of discharge under open-circuit conditions. The self-discharge rate of the cell is due to the dissolution and ionization of alkali metal atoms in the fused-salt electrolyte
Defining solution process and determining equilibrium solubility of highly purified transition metals and compounds in liquid alkali metals