Zero-g liquid studies - Critical state and liquid drop dynamics
Critical state behavior of fluids and liquid drop dynamics in zero gravity
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Critical state behavior of fluids and liquid drop dynamics in zero gravity
Designing experiments on fluid behavior at near-critical state and liquid drop dynamics in weightlessness for Apollo/LEM spacecraft in earth orbit
Limiting problem of totally wetting liquid sloshing in weightless environment
Sphere forming and composite casting manufacturing experiments for AAP Orbital Workshop
System connects seven observers, diver, and spare station, and utilizes public address system with underwater speakers to provide two-way communications between test subject and personnel in control of life support, so that test personnel are warned immediately of malfunction in pressure suit or equipment.
Measurement of cryogenic propellant quantities under conditions of weightlessness
Food packaging and handling under zero-g conditions of space
Zero-g simulation by parabolic aircraft flight for astronaut training
Development status of regenerable life support system compatible with zero-g, employing physical chemical processes for sustaining crew during space flight simulation
One of the most important and probably the most interesting phase of a manned lunar mission will be the time the astronauts spend outside their vehicle on the moon's surface taking scientific measurements, exploring the surface features, surveying possible sites for a lunar base, inspecting their vehicle and preparing it for their return trip. Because the lunar gravity is only one-sixth that of the earth gravity, the explorers undoubtedly will have to adjust their accustomed methods of walking, climbing, jumping and performing other self-locomotive activities in order to carry out these various tasks. In as much as the over-all success of the lunar mission will depend to a large extent upon the self-reliance of the explorers, it will be necessary to have extensive knowledge of the effects of the moon's reduced gravity on the physical capabilities of man and of man's ability to adopt to the new environment prior to the planning and execution of the mission. At the present time there is a dearth of information on this subject due primarily to the lack of a practical technique for simulating the reduced gravity. Several techniques such as immersion in water and riding in an airplane flying a Keplerian trajectory have been used for zero-g or weightlessness studies to determine the physical capabilities of man but these techniques are limited in their usefulness either by restrictions imposed by the viscous effect of the water or by the short duration and small test area available in an airplane. Consequently, an effort was made at the NASA Langley Research Center to devise a new technique that would provide a realistic simlation of a reduced gravity for unlimited periods of time and allow freedom of movement over considerable distances. This paper concerns itself with a discussion of the newly developed simulation technique and a presentation of some preliminary results which were obtained utilizing a working model based on this scheme.
Zero-g vapor feed system with no moving parts, noting ion engine testing, propellant use efficiency and surface tension storage
Surface tension propellant storage and feed systems for zero-g ion engines
Cesium propellant systems utilizing surface tension to position and transfer liquid propellant in zero-g environment studied with high voltage electrical isolation methods
Breadboard model design and construction of test equipment for studying silver zinc battery behavior in zero-g environment of earth orbit
Battery powered electron beam welding under zero-g conditions in orbiting satellite workshop, discussing design concepts
Teflon-packed flexible joint separates the movement of the shaker from the liquid nitrogen hose during the ground testing of cryogenic zero-g equipment. The joint allows the hose to lie on the floor in a stationary position as the shaker moves back and forth, thus, the hose is not subject to violent motion.
Potable water reclamation from human wastes in zero-G environment
Liquid He containment in space zero-g environment, proposing use of high thermal conductivity porous plug operating in superfluid regime