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Chi, J. W. H.

Publications and source records attributed to Chi, J. W. H..

Space nuclear power systems for extraterrestrial basing

Comparative analyses reveal that the nuclear power option significantly reduces the logistic burden required to support a lunar base. The paper considers power levels from tens of kWe for early base operation up to 2000 kWe for a self-sustaining base with a CELSS. It is shown that SP-100 and NERVA derivative reactor (NDR) technology for space power can be used effectively for extraterrestrial base power systems. Recent developments in NDR design that result in major reductions in reactor mass are described.

Lance, J. R.↗

SP-100 space nuclear power system

A baseline design concept for a 100 kWe nuclear reactor space power system is described. The concept was developed under contract from JPL as part of a joint program of the DOE, DOD, and NASA. The major technical and safety constraints influencing the selection of reactor operating parameters are discussed. A lithium-cooled compact fast reactor was selected as the best candidate system. The material selected for the thermoelectric conversion system was silicon germanium (SiGe) with gallium phosphide doping. Attention is given to the improved safety of the seven in-core control rod configuration.

Given, R. W.↗

Thermal design and analyses of Skylab multipurpose furnace and experiments

The Skylab multipurpose electric furnace was designed to accommodate eleven different materials processing experiments with their respective thermal requirements and constraints. Extensive prototype and ground-based tests were carried out and detailed thermal analyses were performed to ensure that these requirements and constraints are met. The basic features of the multipurpose electric furnace and the eleven experimental cartridges are outlined. The design and development problems encountered and the solutions to these problems are discussed. The analytical techniques used for thermal design and analyses are described.

Chi, J. W. H.↗

Basic investigation of turbine erosion phenomena

An analytical-empirical model is presented of turbine erosion that fits and explains experience in both steam and metal vapor turbines. Because of the complexities involved in analyzing turbine problems, in a pure scientific sense, it is obvious that this goal can be only partially realized. Therefore, emphasis is placed on providing a useful model for preliminary erosion estimates for given configurations, fluids, and flow conditions.

Pouchot, W. D.↗