Some alkali metal corrosion effects in a Rankine cycle test loop
Rankine cycle two loop Li boiling Ka facility for nuclear turboplant simulation, studying alkali metal corrosion for operation with and without hot traps
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Rankine cycle two loop Li boiling Ka facility for nuclear turboplant simulation, studying alkali metal corrosion for operation with and without hot traps
Rankine cycle technology programs noting use of stainless steel bimetallic systems, boiler and condenser problems, turbine operation, etc
Steam rankine cycle solar power system
Alkali metal Rankine cycle space power system component and systems design
Steady state Rankine cycle system power source for space adaptation
Space Rankine cycle power systems technology applied to ground-based power systems
Lithium-boiling potassium Rankine cycle heat transfer data for application to spacecraft propulsion systems
Alkali metal boilers are of interest for application to future space Rankine cycle power conversion systems. Significant progress on such boilers was accomplished in the 1960's and early 1970's, but development was not continued to operational systems since NASA's plans for future space missions were drastically curtailed in the early 1970's. In particular, piloted Mars missions were indefinitely deferred. With the announcement of the Space Exploration Initiative (SEI) in July 1989 by President Bush, interest was rekindled in challenging space missions and, consequently in space nuclear power and propulsion. Nuclear electric propulsion (NEP) and nuclear thermal propulsion (NTP) were proposed for interplanetary space vehicles, particularly for Mars missions. The potassium Rankine power conversion cycle became of interest to provide electric power for NEP vehicles and for 'dual-mode' NTP vehicles, where the same reactor could be used directly for propulsion and (with an additional coolant loop) for power. Although the boiler is not a major contributor to system mass, it is of critical importance because of its interaction with the rest of the power conversion system; it can cause problems for other components such as excess liquid droplets entering the turbine, thereby reducing its life, or more critically, it can drive instabilities-some severe enough to cause system failure. Funding for the SEI and its associated technology program from 1990 to 1993 was not sufficient to support significant new work on Rankine cycle boilers for space applications. In Fiscal Year 1994, funding for these challenging missions and technologies has again been curtailed, and planning for the future is very uncertain. The purpose of this paper is to review the technologies developed in the 1960's and 1970's in the light of the recent SEI applications. In this way, future Rankine cycle boiler programs may be conducted most efficiently. This report is aimed at evaluating alkali metal boiler technology for space Rankine cycle systems. Research is summarized on the problems of flow stability, liquid carryover, pressure drop and heat transfer, and on potential solutions developed, primarily those developed by the NASA Lewis Research Center in the 1960's and early 1970's.
Rankine cycle power plant for electric propulsion manned Mars mission analysis of system characteristics and mission duration effect
Rankine cycle power plant characteristics for electric propulsion manned Mars mission
Rotating boiler for high performance Rankine cycle power generator using water as test fluid, obtaining heat-transfer coefficients
Metal corrosion effects in Rankine cycle lithium-boiling potassium test loop simulating working fluids of spacecraft nuclear turboplant propulsion system
Feasibility of rotating boiler for high performance Rankine cycle power generator
Vapor chamber fin-tube radiator geometries for high power Rankine cycle system on spacecraft
Electric propulsion for space exploration, discussing testing results on Rankine cycle power system
Component performance of three loop Rankine cycle test rig using lithium, potassium and NaK-78 as working fluids
Two-phase flow and material attrition problems for Rankine cycle liquid metal power plants
Axial flow turbine for high temperature Rankine cycle space power plants