Temperature control and thermal coupling of an integral adsorption-type cesium reservoir.
Temperature control and thermal coupling of cesium adsorption porous tungsten, charcoal and graphite reservoirs
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Temperature control and thermal coupling of cesium adsorption porous tungsten, charcoal and graphite reservoirs
Spacecraft applications that require the efficient cooling of high-powered components, the precise temperature control of sensitive electronic and optical components, and the protection of cooled components from temporary, adverse environmental conditions are increasing. Heat pipes using gas, vapor, liquid, or voltage control to provide variable conductance or diode thermal behavior have been and are continuing to be developed to meet increasingly difficult requirements. The various control techniques are critically evaluated using characteristic features and properties, including heat transport capability, volume and mass requirements, complexity and ease of fabrication, reliability, and control characteristics. As a result, advantages and disadvantages of specific approaches are derived and discussed. Using four development levels, the state-of-the-art of the various heat pipe temperature control techniques is assessed.
Design and performance of Mariner 5 temperature control assembly coatings
Mariner 5 temperature control reference design, test and performance
Computer optimization of spacecraft optical coatings for temperature control, using finite element analysis and matrix inversion
Fluidic temperature control system for liquid cooled space suits
Computer optimization of spacecraft optical coatings for temperature control, using finite element analysis and matrix inversion
Definition and design study of temperature control flux monitor for Mariner Mars 1969
Optimization for selection of optical coating patterns of external surfaces of spacecraft for temperature control
Spacecraft surface temperature-control coating requirements, selection and performance in prelaunch and space environments
Spacecraft surface temperature-control coating requirements, selection and performance in prelaunch and space environments
A temperature control system, which includes a modified wheatstone bridge with a resistive-capacitive (RC) circuit in one leg of the bridge, is disclosed. The RC circuit includes a resistor which provides an effective resistance as a function of its absolute resistance and the on-time to off-time ratio of pulses supplied to a switch connected across it. A sawtooth voltage is produced across the RC circuit. The voltage is compared with the voltage across a temperature sensor with heat being applied during each pulse period portion when the sawtooth voltage exceeds the voltage across the temperature sensor.
Passive temperature control coatings for Apollo spacecraft ablative thermal protection system
Engineering analysis of shroud, temperature control, and plume heating in recommended Voyager spacecraft configuration
Deployment dynamics and temperature control of spacecraft solar panel array and X ray telescope
Temperature - fuel-flow and temperature-area feedback control systems were investigated as means of controlling tailpipe gas temperature of a turbojet engine during transient operation in the high-speed region. Proportional-plus-integral control was used in both systems, but in the temperature-area control system it was necessary to add nonlinear components to the basic proportional-plus-integral control to provide satisfactory transient response to a desired step increase in temperature. Time integral of temperature-error functions were used as criteria for determining optimum transient response. A description of engine dynamics was obtained from frequency-response data.
Experimental results for three subjects walking on a treadmill at exercise rates of up to 590 watts showed that thermal comfort could be maintained in a liquid cooled garment by using an automatic temperature controller based on sweat rate. The addition of head- and neck-cooling to an Apollo type liquid cooled garment increased its effectiveness and resulted in greater subjective comfort. The biothermal model of man developed in the second portion of the study utilized heat rates and exchange coefficients based on the experimental data, and included the cooling provisions of a liquid-cooled garment with automatic temperature control based on sweat rate. Simulation results were good approximations of the experimental results.
A design study is presented which shows that a tapered element oscillating microbalance can be adapted for temperature control under space application by mating with multistage thermoelectric coolers in such a way that an integral structure evolves. The control of the temperature of the sensing surface can be achieved in a number of ways. An indirect method which uses a measurement of the absorbed power is recommended. The design goals can be met if a relaxation of the power requirement can be considered.