High temperature oxidation resistant coatings. Coatings for protection from oxidation of superalloys, refractory metals, and graphite
High temperature oxidation resistant coatings for superalloys, refractory metals, and graphite
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High temperature oxidation resistant coatings for superalloys, refractory metals, and graphite
Performance characteristics of iridium used as high temperature oxidation protective coating for refractory metals
Effects of hydrostatic pressure cycling on mechanical behavior of body centered cubic refractory metals and alloys - quench aged condition study of iron-carbon alloys
Refractory metal heat pipes developed during this project shall be subjected to various operating conditions to evaluate life-limiting corrosion factors. To accomplish this objective, various parameters shall be investigated, including the effect of temperature and mass fluence on long-term corrosion rate. The test series will begin with a performance test of one module to evaluate its performance and to establish the temperature and power settings for the remaining modules. The performance test will be followed by round-the-clock testing of 16 heat pipes. All heat pipes shall be nondestructively inspected at 6-month intervals. At longer intervals, specific modules will be destructively evaluated. Both the nondestructive and destructive evaluations shall be coordinated with Los Alamos National Laboratory. During the processing, setup, and testing of the heat pipes, standard operating procedures shall be developed. Initial procedures are listed here and, as hardware is developed, will be updated, incorporating findings and lessons learned.
Hydrostatic pressure effect on mechanical behavior of body centered cubic refractory metals and alloys
Fused salt electrodeposition and examination of iridium protective coatings on tungsten, molybdenum, and niobium
Space power system material compatibility tests of selected refractory metal alloys with boiling potassium
Hydrostatic pressure on mechanical behavior of body centered cubic refractory metals and alloys
Carbon activity in refractory metals
Effective work functions of refractory metals at temperatures near their melting points were determined by using a direct-current arc. A metal wire connected as the cathode was melted by striking an arc discharge in an argon atmosphere. A melted sphere was formed with a definite emitting area which was calculated from the sphere diameter measured after terminating the arc. Effective work functions were calculated from the Richardson-Dushman equation by using this emission area. The procedure is experimentally advantageous because surface cleanliness of the specimen is not critical, high vacuum is not required, and the anode-cathode spacing is not critical.
The performance was determined of refractory metal alloys and uranium nitride fuel element specimens in flowing 1900F (1083C) lithium. The results demonstrate the suitability of the selected materials to perform satisfactorily from a chemical compatibility standpoint.
Tensile strength and thermostability of welded refractory metal joints
High temperature protective coatings for refractory metals
Weldability and elevated temperature stability of refractory metal alloys
Thermodynamic properties of interstitial elements in refractory metals
Development and characteristics of frusto-conical die nib for extrusion of refractory metals
Weldability and long time elevated temperature stability of refractory metal alloys for advanced alkali-metal space electric power systems
Corrosion effects of boiling potassium and liquid sodium-potassium on refractory metal alloy tubing of power reactor