The distant geomagnetic field. IV - Microstructure of a disordered hydromagnetic medium in the collisionless limit.
Microstructure of disordered hydromagnetic medium in collisionless limit
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Microstructure of disordered hydromagnetic medium in collisionless limit
Exposure of nickel-base alloys to overtemperature indicates that their creep resistance is sensitive to particle size and spacing in their microstructure
Electron microscope technique for revealing microstructures of dispersion strengthened materials
Composite solid propellant flame microstructure determinations
Microstructure and mechanical properties of carbides
Stress relieving procedure for welded austenitic stainless steel, discussing corrosion resistance and microstructural variations from heating at 1350 degrees F
Cooling rates effect on microstructure and strength of gas tungsten arc welds of aluminum alloy
Fracture characteristics of 6Al-4V titanium alloy forgings containing alpha stringer microstructure
Microstructure and crystallography of lamellar eutectic alloy of Ni and intermetallic Ni-Ti compound
Early Precambrian Onverwacht microstructures studied in petrographic thin sections and powdered preparations for possibility of oldest terrestrial fossils
Microstructure and composition of hafnium dioxide stabilized with Ca, Y and Mg oxides using metallographic, X ray and microprobe
Microstructure of solar wind and interplanetary medium
Kinesonde experiment for development of system for remote sensing of ionospheric motions and microstructure
Variational principles for initial boundary value problem of fully coupled linear thermoelasticity for inhomogeneous anisotropic materials with microstructure
High time resolution measurements of the interplanetary magnetic field and plasma reveal a complex microstructure which includes hydromagnetic wave and discontinuities. The identification of hydromagnetic waves and discontinuities, their statistical properties, their relation to large-scale structure, and their relative contribution to power spectra are discussed.
Mullite fibers of three compositions, ranging from SiO2-rich to Al2O3-rich, were investigated by a number of transmission electron microscopy (TEM) techniques. The fibers were examined in the as-received condition and after subjecting them to thermal exposures as high as 142 C. The investigative techniques used included direct TEM of microtomed sections of mounted fibers and TEM of replicas of polished, chemically etched, and cathodically etched fibers. In addition, X-ray diffraction line broadening analyses was used for determining average crystallite size. A preliminary description of the microstructure of mullite fibers is given.
The techniques of electron microscopy were used to examine the microstructural changes which occur during primary creep for two important types of engineering alloys: (1) alloys strengthened by solid-solution additions, and (2) dispersion-strengthened alloys. The metals chosen for study are unalloyed titanium, Ti-6Al-4V, and the cobalt-base alloy, Haynes 188. Results to date on NGR 47-004-108 show that development of prior dislocation substructure in Haynes 188 by 10% prestrain and annealing for one hour at 1800 F increases the time to reach 0.5% creep strain at 1600 F by more than an order of magnitude for creep stresses from 3 to 20 ksi. For creep at 1800 F, similar results were obtaind for stresses above 7 ksi, but the prior substructure decreases creep resistance below 7 ksi. This effect appears to be related to instability of grain structure at 1800 F in prestrained material.
The microstructures of mullite composition fibers were examined by transmission electron microscopic techniques and by X-ray diffraction analyses. Both spun and monofilament fiber structures contained little porosity, nor did the degree of porosity change after heating the monofilament to 1205 C for one half hour. Thermal exposure produced crystallite growth and nucleation from the amorphous phase in all three of the spun fibers. After 116 hours at 1426 C, the crystallites of the standard spun fibers became contiguous. In addition, the surface crystallites of these fibers were found to be more than twice as large as the interior crystallites.