Advanced refractory alloy corrosion loop program Quarterly progress report no. 5, 15 Apr. - 15 Jul. 1966
Extrusion parameters, mechanical properties, and chemical analyses of refractory alloys
SEARCH · Search NASA
Search indexed NASA NTRS and DOE OSTI research on propulsion, heat transfer, battery materials and energy systems. Follow report and document links to the original sources.
Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.
Extrusion parameters, mechanical properties, and chemical analyses of refractory alloys
Long time creep data on refractory alloys at high temperatures
Fatigue data for refractory alloys at elevated temperatures in ultrahigh-vacuum environments
Heat treatment and inspection of refractory alloys, tubing and component fabrication, and lithium purification system for corrosion loop
Fatigue data for refractory alloys at elevated temperatures in ultrahigh vacuum environments
Fatigue testing of refractory alloys to determine effect of notch geometry on fatigue strength
Long time creep test data generated for refractory alloys at elevated temperatures
High entropy alloys (HEAs) correspond to a new and emerging class of materials that allows us to explore a large composition space to tune mechanical strength and thermal stability. Therefore, to design better alloys, it is important to scan the high-dimensional space of chemistry, composition and temperature. Here, to facilitate this search, we present a method to screen intrinsically ductile body centered cubic (BCC) refractory alloys from electronic structure calculations by using the density of states (DOS) at the Fermi level, g(μ F ). This correlation between intrinsic ductility and g(μ F ) is tested by analyzing group V (V, Nb, Ta) and VI (Mo, W) refractory metals, binary alloys, such as W-Nb, W-V, Mo-Nb and Mo-V, and refractory alloys for which experimental stress-strain measurements are available. In addition, we perform a high-throughput exploration of the entire composition space of a recently proposed alloy system, CrMoNbV, and identify compositions that exhibit high intrinsic ductility.
Purification of alkali metals for use in advanced refractory alloy corrosion loop
Magnetostriction device for studying cavitation damage resistance and high frequency fatigue of refractory alloys in high temperature liquid sodium
Material specifications for advanced refractory niobium, tantalum, and molybdenum alloys - potassium corrosion test loop development
Material procurement and quality assurance for advanced refractory alloy corrosion loop program
Refractory alloy creep test data for molybdenum base alloy TZM, pure tantalum, and tantalum base alloys T-111 and ASTAR-811C at elevated temperatures in ultrahigh vacuum
Elevated-temperature fatigue data on notched and smooth specimens of refractory alloys in ultrahigh vacuum environments
Creep data obtained at high temperatures for molybdenum, niobium, tantalum, and tungsten refractory alloys which have potential use in advanced power systems
Refractory metal alloys rating on basis of weldability emphasizing metallurgical considerations, taking into account process control and welding as thermal process
Evaluation of T-111 refractory alloy Rankine system corrosion test loop
This technical memorandum (TM) seeks to model and discuss aspects of nanoparticle and micrometer-scale particle or ‘microparticle’ inclusions in refractory metal alloy manufacturing, via a currently used additive manufacturing (AM) method that results in equivalent wt.% addition of dissolved elements in the melt pool composition and subsequent formation of nanometer-scale MC and MO inclusions. Additionally, the authors begin to consider the effects of oxygen (O), a ubiquitous impurity, in AM; and seek to understand a combined optimization of alloying, nano- and micro strengthening and refinement, elemental additions, and even in-situ compounds and alloys species formation. To gain insights, this TM focuses on a pair of refractory alloys currently of interest to NASA: tungsten-rhenium-tantalum carbide (with O impurities) (W-Re-TaC(-O)) and tungsten-rhenium-tantalum-carbon (with O impurities) (W-Re-Ta-C(-O)), which are processed via powder bed fusion (PBF)-SLM.