INTEGRAL AND SPHERICAL-HARMONIC ANALYSES OF THE GEOMAGNETIC FIELD FOR 1955.0
Integral and spherical-harmonic analysis of the geomagnetic field
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Integral and spherical-harmonic analysis of the geomagnetic field
Inviscid gas flow over nose region of supersonic yawed axisymmetric blunt body treated by integral relations in body oriented coordinate system
Optimization of nonlinear closed-loop dynamic control systems - integral performance function for partial ordering of closed loop controls
Symbolic language for expressing functional relationships of space vehicle components
Summary on autonomous linear functional equations
Maximum error curves for Lanczos selected point method of polynomial solution to ordinary differential equations, using Chebyshev and Legendre functions
Complete Rayleigh scattered field within homogeneous plane parallel atmosphere, noting scalar transfer equation extension
Feynman integral for classical waves evaluated, using Hamiltonian approach to summation
Integral stress function for state of membrane stress in shells of revolution formed by second- order surface
Functional expression for describing lunar surface directional reflectance characteristics
Integral representation theorems and weak compactness for bounded linear transformations of Banach and other spaces
Method of finite integral transforms as format for employment of incomplete eigenfunctions, discussing application of equitriangular transform
Optimal singular controls made nonsingular for decreasing epsilon values by adding integral quadratic functional of control to cost functional
A 90-day test is reported of a regenerative life support system which was completed in a space station simulator. The long duration of the test and the fact that it was manned, imposed rigid reliability and safety requirements on the facility. Where adequate reliability could not be built into essential facility systems, either backup systems or components were provided. Awareness was intensified by: (1) placing signs on every piece of equipment that could affect the test, (2) painting switches on all breaker panels a bright contrasting color, (3) restricting access to the test control area, and (4) informing personnel in the facility (other than test personnel) of test activities. It is concluded that the basic facility is satisfactory for conducting long-duration manned tests, and it is recommended that all monitor and alarm functions be integrated into a single operation.
A continuous flexible body nonlinear dynamics computer program is used for simulating the spinning mode performance of a spacecraft under applied control torques. The program takes into account the continuous flexible nature of the antennas by representing deflections in terms of shape functions and integrated the spatial dependence in the formulation of the equations of motion. Comparison of RAE flight data on roll, pitch, and yaw with predictions of the computer program in the gravity gradient mode show fair to good agreement in roll and pitch and excellent agreement in the yaw angle.
Emission from the exhaust plume of a 30 cm mercury ion thruster was measured from 160 to 600 nm as a function of axial and radial distance from the thruster discharge chamber. The spectrally dispersed absolute intensities were used to construct an empirical volume rate function. The function was integrated along a typical instrument field of view, and the resulting apparent brightness was compared with instrument sensitivities to evaluate the extent of optical interference. Most of the emitted radiation came from UV lines of excited mercury atoms and ions, with no observable continuum emission. The intensity levels degraded rapidly with distance from the thruster so that optical interference was negligible for fields of view not intercepting the beam axis. The operation of only one instrument, a zodiacal photopolarimeter, was considered incompatible with simultaneous thruster operation.
The baseline avionics systems for the space tug is comprised of a central digital computer that integrates the functions of all of the tug's subsystems by means of a redundant digital data bus. The major subsystems of the avionics system are: data management; communications; guidance, navigation, and control; rendezvous and docking; electrical power; and instrumentation. The baseline avionics system for the space tug resulting from system and subsystem trade studies is defined. Tug interfaces with the spacecraft, orbiter and the ground, and the baseline philosophy and configuration for onboard checkout of the tug are included. Baseline configurations, functional and operational features, component details and characteristics, and the supporting software are included in the subsystem descriptions.
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