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  • 1
    Publication Date: 2011-08-24
    Description: Previous papers of this conference have described rocket systems capable of launching sizable payloads into satellite orbits. Propulsion systems that might be suitable for the next steps are discussed in this paper. Some of the uses for propulsion systems once satellites have been established are as follows: (1) increasing lifetime of low-altitude satellite, (2) controlling and altering satellite orbits, (3) lunar and interplanetary exploration and (4) auxiliary electric power. (author)
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  • 2
    Publication Date: 2005-03-24
    Keywords: GENERAL
    Type: NACA 1957 Flight Propulsion Conf.; p 27-65
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  • 3
    Publication Date: 2006-10-26
    Description: Potassium vapor Rankine cycle turbogenerator power system
    Keywords: NUCLEAR ENGINEERING
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  • 4
    Publication Date: 2006-10-26
    Keywords: unknown
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  • 5
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    In:  Other Sources
    Publication Date: 2011-08-10
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  • 6
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    In:  Other Sources
    Publication Date: 2011-08-17
    Keywords: SPACECRAFT PROPULSION AND POWER
    Type: Journal of Energy; 2; May-June
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  • 7
    Publication Date: 2016-06-07
    Description: The concept of generating power in space by means of a conducting tether deployed from a spacecraft was studied. Using hydrogen and oxygen as the rocket propellant to overcome the drag of such a power-generating tether would yield more benefit than if used in a fuel cell. The mass consumption would be 25 percent less than the reactant consumption of fuel cells. Residual hydrogen and oxygen in the external tank and in the orbiter could be used very effectively for this purpose. Many other materials (such as waste from life support) could be used as the propellant. Electrical propulsion using tether generated power can compensate for the drag of a power-generating tether, half the power going to the useful load and the rest for electric propulsion. In addition, the spacecraft's orbital energy is a large energy reservoir that permits load leveling and a ratio of peak to average power equal to 2. Critical technologies to be explored before a power-generating tether can be used in space are delineated.
    Keywords: LAUNCH VEHICLES AND SPACE VEHICLES
    Type: Spacecraft Environ. Interactions Technol., 1983; p 637-647
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  • 8
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    In:  CASI
    Publication Date: 2016-06-07
    Description: The present state of the art of thermal power systems is surveyed. Because of the great potential variety of thermal power systems, the heat sources, the power conversion systems, and the integration of thermal power systems with missions are treated sequentially.
    Keywords: SPACECRAFT PROPULSION AND POWER
    Type: Future Orbital Power Systems Technol. Requirements; p 113-131
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  • 9
    Publication Date: 2019-06-28
    Description: Brayton cycle gas turbines have the potential to use either solar heat or nuclear reactors for generating from tens of kilowatts to tens of megawatts of power in space, all this from a single technology for the power generating system. Their development for solar energy dynamic power generation for the space station could be the first step in an evolution of such powerplants for a very wide range of applications. At the low power level of only 10 kWe, a power generating system has already demonstrated overall efficiency of 0.29 and operated 38 000 hr. Tests of improved components show that these components would raise that efficiency to 0.32, a value twice that demonstrated by any alternate concept. Because of this high efficiency, solar Brayton cycle power generators offer the potential to increase power per unit of solar collector area to levels exceeding four times that from photovoltaic powerplants using present technology for silicon solar cells. The technologies for solar mirrors and heat receivers are reviewed and assessed. This Brayton technology for solar powerplants is equally suitable for use with the nuclear reactors. The available long time creep data on the tantalum alloy ASTAR-811C show that such Brayton cycles can evolve to cycle peak temperatures of 1500 K (2240 F). And this same technology can be extended to generate 10 to 100 MW in space by exploiting existing technology for terrestrial gas turbines in the fields of both aircraft propulsion and stationary power generation.
    Keywords: SPACECRAFT PROPULSION AND POWER
    Type: NASA-TP-2558 , E-2761 , NAS 1.60:2558
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  • 10
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    In:  CASI
    Publication Date: 2014-09-12
    Description: The characteristics of dynamic power systems have considerable potential value, especially for the space station. The base of technology that makes these dynamic power systems practical is reviewed. The following types of power-generating systems are examined herein: organic Rankine cycle, potassium Rankine cycle, Brayton cycle, and Stirling cycle.
    Keywords: ENERGY PRODUCTION AND CONVERSION
    Type: Space Power; p 137-149
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