Laminar mixing of heterogeneous axisymmetric coaxial confined jets Final report
Laminar mixing of heterogeneous axisymmetrical coaxial confined jets for application to nuclear rocket propulsion
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Laminar mixing of heterogeneous axisymmetrical coaxial confined jets for application to nuclear rocket propulsion
Relativistic electron confinement within geomagnetic tail neutral sheet measured by Pioneer 7 deep space probe, confirming kinetic energy observations of IMP 1 satellite
Distortion in axial velocity distribution when magnetically confined plasma passes through aperture
Confined turbulent mixing of dissimilar jets in initial region
Dissimilar coaxial axisymmetric jets confined laminar mixing obtained from numerical solution of boundary layer equations, considering binary, isothermal and nonreacting system
Quasi-linear mode coupling in confined hot-ion Penning discharge plasma, discussing externally imposed excitation and internally generated oscillations
Environmental control of confined spaces and life support systems by Pontryagin maximum principle of optimal control theory, discussing cabins, heat exchanger, etc
Optimal temperature control for confined spaces and life support systems, using mathematical models of environmental control systems
Fluid mechanics experiments to investigate methods for reducing mixing between confined coaxial flows in cylindrical chambers for application to open-cycle gaseous-core nuclear rockets
Axisymmetric flows with regions of closed streamlines confined by rotational inertia or electromagnetic pinch, for containment for gas core reactors
Optimal control theory application to environmental control of confined spaces and life support systems, considering algorithm of Pontryagin principle
Recirculation patterns in coaxial steady laminar mixing of homogeneous jets in confined tube, solving Navier-Stokes equations
Recirculating cells and entrance conditions influence on confined heterogeneous jets laminar mixing, measuring velocity and concentration profiles
Finite beta microinstabilities inherent in magnetic mirror confined plasmas, considering wave propagation across magnetic field at multiples of ion cyclotron frequency
The confinement of an electron free plasma in a pure quadrupole RF electric trap was considered. The ultimate goal was to produce a large density of mercury ions, in order to realize a trapped ion frequency standard using the hyperfine resonance of 199 Hg(+) at 40.7 GHz. An attempt was made to obtain an iodine plasma consisting of equal numbers of positive and negative ions of atomic iodine, the positive iodine ions, being susceptible to charge-exchange with mercury atoms, will produce the desired mercury ions. The experiment showed that the photoproduction of ions pairs in iodine using the necessary UV radiation occurs with a small cross-section, making it difficult to demonstrate the feasibility of space charge neutralization in a quadrupole trap. For this reason it was considered expedient to choose thallium iodide, which has a more favorable absorption spectrum (in the region of 2000 to 2100 A). The results indicate that, although the ionic recombination is a serious limiting factor, a considerable improvement can be obtained in practice for the density of trapped ions, with a considerable advantage in lifetimes for spectroscopic purposes. The ion pair formation by photoionization is briefly reviewed.
The effectiveness of fluid containment near an interior stagnation point and within a self-confined stagnation region is determined by numerically solving the species conservation equation for a bi-component mixture. The flow geometry is that of a swirling fluid stream containing a stationary eddy on the axis of rotation. The base flow is axisymmetric, and the Reynolds number is equal to 50. Schmidt numbers range from 0.1 to 10.
Short-lived (about 15 min), low-energy proton increases associated with the passage of interplanetary shock waves have been previously reported. In the present paper, we have examined in a fine time scale (about 1 min) the concurrent particle and magnetic field data, taken by detectors on Explorer 34, for four of these events. Our results further support the view that these impulsive events are due to confinement of the solar cosmic-ray particles in the region just ahead (about 1,000,000 km) of the advancing shock front.
The results of a parametric study on the entrance flow region in a gas core nuclear reactor are presented. The physical system is modeled as laminar confined, coaxial flow with heat generation in the inner fluid. The governing equations include the boundary layer approximations and the assumptions of only radial radiative transport of energy represented as an energy diffusion term. The Von Mises transformation and a zeta transformation are used to transform the equations into nonlinear nonhomogeneous convective-diffusion equations. A unique combination of forward and backward difference equations which yields accurate results at moderate computational times, is used in the numerical method. Results show that the rapidly accelerating, heat generating inner stream actually shrinks in radius as it expands axially.