Antennas for space vehicles.
Performance and applications of nine types of spacecraft telecommunications antennas
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Performance and applications of nine types of spacecraft telecommunications antennas
Mars atmosphere and ionosphere measurements using 2300-mc telemetry signal from Mariner IV SPACECRAFT occultation experiments
Effect of frequency on communications capability, single antennas and arrays, and economic balance between ground station and spacecraft development
Deep Space Network ground communications system - system design, tracking and navigation accuracy, communications research and development engineering, and tracking stations
In-orbit performance evaluation of Relay-I experimental communications spacecraft
Capabilities of Lunar Television Image Converter system used for digital processing of Ranger and Mariner pictures
Radiation patterns of high impact coaxial cavity radiator antenna before and after impact
Phase locked loops in space communications
Machine language to describe on board and ground station data handling and processing of satellite experiments
Conceptual mechanization for horizon definition spacecraft communications and data handling subsystem
Signal margin calculation procedures for CSM UNIFIED S-BAND downlink channel Apollo AS-202 TO aircraft NASA 432
Performance of photographic, communications, power, attitude control, and velocity control subsystems of Lunar Orbiter III
Design, alignment, testing, and specifications of S-band transponder Mark I with 20-cycle bandwidth for planetary spacecraft
Multipath environment using planetary surface model and fast fading effects on relay link of communications between spacecraft and probe entering planetary atmosphere
Precision power measurements of spacecraft CW SIGNAL level with microwave noise standards, noting Mariner IV application
Deep reconditioning of batteries is defined as discharge below the 1.0 volt/cell level to a value of about 1.0 volt/battery. This type of reconditioning was investigated for use on the Defense Satellite Communications System (DSCS) spacecraft, and has been used during the first year of orbital operation. Prior to launch of the spacecraft, the deep reconditioning was used during the battery life test, which has now complete fourteen eclipse periods. Reconditioning was performed prior to each eclipse period of the life test, and is scheduled to be used prior to each eclipse period in orbit. The battery data for discharge and recharge is presented for one of the life test reconditioning cycles, and for each of the three batteries during the reconditioning cycles between eclipse period no.1 and eclipse period no.2 in Earth orbit.
Report discusses candidate architectures for digital computer system, part of communication system in spacecraft. Primary issues in analysis; performance, rates of bit errors attributable to single-event upsets (caused by ionizing radiation), reliability, size, and dissipation of power.
Mass is the most important limiting parameter for present-day planetary spacecraft design, In fact, the entire design can be characterized by mass. The more efficient the design of the spacecraft, the less mass will be required. The communications system is an essential and integral part of planetary spacecraft. A study is presented of the mass attributable to the communications system for spacecraft designs used in recent missions in an attempt to help guide future design considerations and research and development efforts. The basic approach is to examine the spacecraft by subsystem and allocate a portion of each subsystem to telecommunications. Conceptually, this is to divide the spacecraft into two parts, telecommunications and nontelecommunications. In this way, it is clear what the mass attributable to the communications system is. The percentage of mass is calculated using the actual masses of the spacecraft parts, except in the case of CRAF. In that case, estimated masses are used since the spacecraft was not yet built. The results show that the portion of the spacecraft attributable to telecommunications is substantial. The mass fraction for Voyager, Galileo, and CRAF (Mariner Mark 2) is 34, 19, and 18 percent, respectively. The large reduction of telecommunications mass from Voyager to Galileo is mainly due to the use of a deployable antenna instead of the solid antenna on Voyager.