Determination of mean atmospheric densities from the explorer ix satellite
Mean atmospheric densities from changes in orbital elements of Explorer IX satellite
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Mean atmospheric densities from changes in orbital elements of Explorer IX satellite
Spatial distribution of trapped particles measured by Explorer XV satellite, noting decay time constants and energies
Cylindrical electrostatic probes on Alouette 2 and Explorer 31 satellites used in intersatellite comparison of directly measured ionospheric electron temperature and density
Trapped radiation observed by Telstar 1 and Explorer 15 satellites
Atmospheric ionic composition determination, electron temperatures, and solar activity experiments from explorer viii satellite
Planar thermal ion and electron trap experiments on Explorer 31 satellite, measuring ion and electron density and temperature and ionic composition
The ion densities observed as the Atmosphere Explorer-C satellite passed through an aurora at F-region altitudes are compared to those calculated from photochemical theory using in situ measurements of atmospheric parameters (ionic and neutral composition; electron flux; neutral temperature; ion temperature) along the satellite track together with current values for reaction rates. Good agreement is obtained for the ions O2(+), NO(+), and N2(+). The atomic nitrogen densities calculated from the observed NO(+)/O2(+) ratio are found to account for about 60% of the N(+) production through electron impact on N and the resonant charge exchange of O(+)(2P) with N(4S). The N density at about 280 km, the region of the most intense electron fluxes (20 erg/sq cm/sec), is between 20 and 70 million/cu cm.
Experimental data were obtained from the Explorer VIII satellite on five parameters pertinent to the problem of the interaction of space vehicles with an ionized atmosphere. The five parameters are: photoemission current due to electrons emitted from the satellite surfaces as a result of solar radiation; electron and positive ion currents due to the diffusion of charged particles from the medium to the spacecraft; the vehicle potential relative to the medium, and the ambient electron temperature. Included in the experimental data is the aspect dependence of the photoemission and diffusion currents. On the basis of the observations, certain characteristics of the satellite's plasma sheath are postulated.
Mean atmospheric densities during minimum solar activity derived from energy changes of Explorer XIX Satellite
Satellite exploration of sun, interplanetary space, and magnetosphere
This paper describes the attitude determination algorithm for the Explorer Platform satellite. The algorithm, which is baselined on the Landsat code, is a six-element linear quadratic state estimation processor, in the form of a Kalman filter augmented by an adaptive filter process. Improvements to the original Landsat algorithm were required to meet mission pointing requirements. These consisted of a more efficient sensor processing algorithm and the addition of an adaptive filter which acts as a check on the Kalman filter during satellite slew maneuvers. A 1750A processor will be flown on board the satellite for the first time as a coprocessor (COP) in addition to the NASA Standard Spacecraft Computer. The attitude determination algorithm, which will be resident in the COP's memory, will make full use of its improved processing capabilities to meet mission requirements. Additional benefits were gained by writing the attitude determination code in Ada.
Nitrogen, oxygen, and helium concentrations in upper atmosphere taken from mass spectrometry data on Explorer XVII satellite
Air resistance and radiation pressure as the cause of changes in the orbit of explorer ix satellite
Electron density measurements above ionosphere using very high frequency and ultrahigh frequency radio signals from Explorer VI SATELLITE
Electron temperature and ion density measurements for ionospheric behavior at time of solar minimum, using Explorer XVII satellite
Comparison of cylindrical electrostatic probe measurements of Alouette 2 and Explorer 31 satellites
Atmospheric density measurements from Explorer 17 satellite by density gage and drag techniques resolved for difference by calibration and systematic errors considerations
A communications system for performing the basic functions of mission operations, orbit and attitude determination, and data processing is described. A block diagram is provided to show the relationships of these functions with the spacecraft in orbit and the experiments to be conducted on board the spacecraft. Specific areas of application are discussed as follows: (1) software operating systems for the ATS-F satellite testing and ground support, (2) inversion of the RAE-1 satellite (Explorer 38 satellite) in orbit, (3) ALSEP differential Doppler tracking, (4) minitrack calibration using satellite data, (5) angles-only orbit extraction, and (6) image processing system performance prediction and product quality evaluation techniques. Block diagrams of the various systems are provided to show the steps involved in the operations.