Flux-density measurements of selected radio sources relative to Cassiopeia A at 21.84 GHz
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Engineering topics
Publications and source records attributed to Klein, M. J..
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It is shown through the use of weighting functions that Jupiter's brightness temperature in the wavelength range 0.8-1.5 cm contains information on the thermal structure and abundance of ammonia in and above the tropopause in Jupiter's atmosphere. We present new data of Jupiter's brightness temperature in this wavelength range, and compare the results with theoretical spectra. The pressure in the Jovian atmosphere is estimated from these data to be 0.48 atm at 130 K.
The effect of seven different solutes in binary columbium (Nb) alloys on creep strength was determined from 1400 to 3400 F for solute concentrations to 20 at.%, using a new method of creep-strength measurement. The technique permits rapid determination of approximate creep strength over a large temperature span. All of the elements were found to increase the creep strength of columbium except tantalum. This element did not strengthen columbium until the concentration exceeded 10 at.%. Hafnium, zirconium, and vanadium strengthed columbium most at low temperatures and concentrations, whereas tungsten, molybdenum, and rhenium contributed more to creep strength at high temperatures and concentrations.
The creep strength of 17 ternary columbium (Nb)-base alloys was determined using an abbreviated measuring technique, and the results were analyzed to identify the contributions of solute interactions to creep strength. Isostrength creep diagrams and an interaction strengthening parameter, ST, were used to present and analyze data. It was shown that the isostrength creep diagram can be used to estimate the creep strength of untested alloys and to identify compositions with the most economical use of alloy elements. Positive values of ST were found for most alloys, showing that interaction strengthening makes an important contribution to the creep strength of these ternary alloys.
The activation energy for creep of nominally pure columbium (niobium) was determined in the temperature range from 0.4 to 0.75 T sub M by measuring strain rate changes induced by temperature shifts at constant stress. A peak in the activation energy vs temperature curve was found with a maximum value of 160 kcal/mole. A pretest heat treatment of 3000 F for 30 min resulted in even higher values of activation energy (greater than 600 kcal/mole) in this temperature range. The activation energy for the heat-treated columbium (Nb) could not be determined near 0.5 T sub M because of unusual creep curves involving negligible steady-state creep rates and failure at less than 5% creep strain. It is suggested that the anomalous activation energy values and the unusual creep behavior in this temperature range are caused by dynamic strain aging involving substitutional atom impurities and that this type of strain aging may be in part responsible for the scatter in previously reported values of activation energy for creep of columbium (Nb) near 0.5 T sub M.
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Mercury disk temperature from microwave spectrum analysis, proposing subsurface greenhouse effect
Interstitial sinks effects on high temperature structural and creep behavior of niobium and niobium-zirconium alloy
Structural and mechanical effects of interstitial sinks in niobium and alloys of niobium and tantalum
Contribution of interstitial sinks to creep strength of niobium- and tantalum-based alloys determined by effect on activation energy for creep
Creep strength of columbium and tantalum base alloys
Activation energy and stress dependence of creep rate of niobium and tantalum base alloys
Titanium base interstitial sink effects on creep behavior, structure, and interstitial concentration of niobium base refractory alloy
Changes in structure and mechanical properties of refractory metal alloys induced by titanium interstitial sink
Structural changes in niobium base alloys induced by exposure to titanium interstitial sink at elevated temperature
Changes in structure and mechanical properties due to loss of interstitials to reactive metal coatings studied in dispersion strengthened niobium alloys
Mechanical properties of chromium, chromium rhenium, and derived alloys
Effect of quenching on ductile-brittle bend transition temperature of chromium wire