A low-mass solution to electrical insulation in the lunar environment may be possible by embedding bare HV conductors within the lunar soil itself. In this paper, a 'standard' NASA soil (lunar simulant) representing chemical and physical conditions found in some lunar samples was used in laboratory experiments, and its HV electrical breakdown data were presented for the first time. Insulation characteristics and leakage currents representative of variations in nonlinear resistivity of the soil were investigated. The data were compared to earlier published data for a typical lunar soil's electrical characteristics. A pair of bare planar transmission lines, having a parallel plate geometry, was buried in the lunar soil simulant and used to measure the simulant's electrical parameters. The soil simulant and the electrode assembly were in a high vacuum environment throughout the experiment series. For this parallel plate electrode configuration, electrical breakdown limits and temporal evolution of voltage breakdown of the simulated lunar soil were measured. The data were analyzed in terms of physical mechanisms. Results presented here may find applications in terrestrial uses of porous ceramics as insulators as well as in future lunar colony transmission line insulation techniques and design purposes.
An affordable technique has been developed to duplicate the types of impacts observed on spacecraft, including the Shuttle, by use of a certified Hypervelocity Impact Facility (HIF) which propels particulates using capacitor driven electric gun techniques. The fully operational facility provides a flux of particles in the 10-100 micron diameter range with a velocity distribution covering the space debris and interplanetary dust particle environment. HIF measurements of particle size, composition, impact angle and velocity distribution indicate that such parameters can be controlled in a specified, tailored test designed for or by the user. Unique diagnostics enable researchers to fully describe the impact for evaluating the 'targets' under full power or load. Users regularly evaluate space hardware, including solar cells, coatings, and materials, exposing selected portions of space-qualified items to a wide range of impact events and environmental conditions. Benefits include corroboration of data obtained from impact events, flight simulation of designs, accelerated aging of systems, and development of manufacturing techniques.
As a result of man's venturing into space, the local debris contributed by his presence exceeds, at some orbital altitudes, that of the natural component. Man's contribution ranges from fuel residue to large derelect satellites that weigh many kilograms. Current debris models are able to predict the growth of the problem and suggest that spacecraft must employ armor or bumper shields for some orbital altitudes now, and that, the problem will become worse as a function of time. The practical upper limit to the velocity distribution is on the order of 40 km/s and is associated with the natural environment. The maximum velocity of the man-made component is in the 14-16 km/s range. The Long Duration Exposure Facility (LDEF) has verified that the 'high probability of impact' particles are in the microgram to milligram range. These particles can have significant effects on coatings, insulators, and thin metallic layers. The surface of thick materials becomes pitted and the local debris component is enhanced by ejecta from the debris spectrum in a controlled environment. The facility capability is discussed in terms of drive geometry, energetics, velocity distribution, diagnostics, and projectile/debris loading. The facility is currently being used to study impact phenomena on Space Station Freedom's solar array structure, other solar array materials, potential structural materials for use in the station, electrical breakdown in the space environment, and as a means of clarifying or duplicating the impact phenomena on the LDEF surfaces. The results of these experiments are described in terms of the mass/velocity distribution incident on selected samples, crater dynamics, and sample geometry.
An impact facility for simulating space debris effects is described. The facility capability is described in terms of drive geometry, energetics, and armature loading. The facility is used to study impact phenomena on Space Station Freedom's solar array structure, other structural materials from the Station, and a means of duplicating the damage characteristic of the Long Duration Exposure Facility. Preliminary results of these experiments are described in terms of the mass/velocity distribution incident on selected samples, crater dynamics, and sample geometry.