Hydrostatics of a fluid between parallel plates at low bond numbers
Two-dimensional liquid vapor interface behavior between parallel plates under static equilibrium and low gravitational acceleration
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Two-dimensional liquid vapor interface behavior between parallel plates under static equilibrium and low gravitational acceleration
Slope diffraction analysis of TEM parallel plate guide patterns
Reflection coefficient of transverse electromagnetic mode parallel plate waveguide illuminating perfectly reflecting sheet
Couette flow and heat transfer between parallel plates enclosing hard-sphere rarefied gas analyzed by Monte Carlo method
Monte Carlo analysis of rarefied-gas heat transfer between parallel plates under various flow conditions
Couette flow and heat transfer of rarefied gas between parallel plates analyzed by Monte Carlo method
Admittance of parallel plate waveguide aperture with infinite flange illuminating metal sheet, using wedge diffraction theory and integral transform method
Turbulent Couette flow between parallel plates was studied from a statistical mechanics approach utilizing a model equation, similar to the Boltzmann equation of kinetic theory, which was proposed by Lundgren from the velocity distribution of fluid elements. Solutions to this equation are obtained numerically, employing the discrete ordinate method and finite differences. Two types of boundary conditions on the distribution function are considered, and the results of the calculations are compared to available experimental data. The research establishes that Lundgren's equation provides a very good description of turbulence for the flow situation considered and that it offers an analytical tool for further study of more complex turbulent flows. The present work also indicates that modelling of the boundary conditions is an area where further study is required.
Homogeneity of large aperture parallel glass plates
Monte Carlo method analysis of rarefied gas heat transfer between parallel plates in terms of temperature, density and Knudsen number
The Balloon Experiment for Galactic INfrared Science (BEGINS) is a concept for a sub-orbital observatory that will characterize dust in the vicinity of high-mass stars. It requires detectors with NEPs from 2x10 -16 W Hz -1/2 to 6x10 -17 W Hz -1/2 from 25-250 microns, respectively. The mission’s sensitivity requirements will be met by utilizing arrays of 1,840 lens-coupled, lumped-element kinetic inductance detectors (KIDs) operating at 300 mK. Each KID will consist of a titanium nitride (TiN) parallel strip absorbing inductive section and parallel plate capacitor deposited on a Silicon (Si) substrate. The parallel plate capacitor geometry allows for reduction of the pixel spacing. We present the optical performance of a prototype BEGINS KID array at 25 microns when coupled to Fresnel zone plate lenses. We present sensitivity, optical efficiency and quasiparticle lifetime measurements taken in a cryogenic test bed with a cryogenic blackbody.
All Cryomodule (CM) and Cryogenic Distribution System (CDS) relieving into Helium Low Pressure (LP) return header, which is connected to compressor suction so, helium can be preserved during small flow relieving event and recirculated to system. However, during worst case scenario, Helium LP header requires a parallel plate relief device to relieve excess pressure from header. To complete the CDS Warm piping header, a new design for a 10 parallel plate relief device is necessary to relieve outside of the tunnel into atmosphere.
Small electrostatic image dissector with parallel plate resistive strip electronic multiplier
Thin walled parallel plate waveguide radiation pattern analyzed by surface integration techniques
Reflection coefficient of symmetric parallel plate waveguide operating in TEM mode illuminating lossless dielectric layer, using wedge diffraction and geometrical optics methods
High intensity interference patterns for lateral shearing interferometer with single plane parallel plate and gaseous laser source
Testing of optical homogeneity of large-aperture parallel plates of glass, and discussion of spherical aberration, refractive index and optical thickness
Modal wave solutions of isotropic plasma-filled parallel-plate waveguide examined, using cold and warm plasma models without collision