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Date of download: 12/22/2017 Copyright © ASME. All rights reserved. From: Analyses of Simple and Intercooled Recuperated Direct Brayton Helium Gas Turbine Cycles for Generation IV Reactor Power Plants ASME J of Nuclear Rad Sci. 2016;3(1): doi: / Figure Legend: Typical simple cycle with recuperator [9]
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Date of download: 12/22/2017 Copyright © ASME. All rights reserved. From: Analyses of Simple and Intercooled Recuperated Direct Brayton Helium Gas Turbine Cycles for Generation IV Reactor Power Plants ASME J of Nuclear Rad Sci. 2016;3(1): doi: / Figure Legend: Typical intercooled cycle with recuperator [10]
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Date of download: 12/22/2017 Copyright © ASME. All rights reserved. From: Analyses of Simple and Intercooled Recuperated Direct Brayton Helium Gas Turbine Cycles for Generation IV Reactor Power Plants ASME J of Nuclear Rad Sci. 2016;3(1): doi: / Figure Legend: Performance simulation tool structure for SCR
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Date of download: 12/22/2017 Copyright © ASME. All rights reserved. From: Analyses of Simple and Intercooled Recuperated Direct Brayton Helium Gas Turbine Cycles for Generation IV Reactor Power Plants ASME J of Nuclear Rad Sci. 2016;3(1): doi: / Figure Legend: PR versus efficiency for given TRs (SCR)
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Date of download: 12/22/2017 Copyright © ASME. All rights reserved. From: Analyses of Simple and Intercooled Recuperated Direct Brayton Helium Gas Turbine Cycles for Generation IV Reactor Power Plants ASME J of Nuclear Rad Sci. 2016;3(1): doi: / Figure Legend: PR versus efficiency for given TRs (ICR)
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Date of download: 12/22/2017 Copyright © ASME. All rights reserved. From: Analyses of Simple and Intercooled Recuperated Direct Brayton Helium Gas Turbine Cycles for Generation IV Reactor Power Plants ASME J of Nuclear Rad Sci. 2016;3(1): doi: / Figure Legend: PR versus specific work for given TRs (SCR)
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Date of download: 12/22/2017 Copyright © ASME. All rights reserved. From: Analyses of Simple and Intercooled Recuperated Direct Brayton Helium Gas Turbine Cycles for Generation IV Reactor Power Plants ASME J of Nuclear Rad Sci. 2016;3(1): doi: / Figure Legend: PR versus specific work for given TRs (ICR)
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Date of download: 12/22/2017 Copyright © ASME. All rights reserved. From: Analyses of Simple and Intercooled Recuperated Direct Brayton Helium Gas Turbine Cycles for Generation IV Reactor Power Plants ASME J of Nuclear Rad Sci. 2016;3(1): doi: / Figure Legend: Sensitivity analysis—effect of component efficiencies on cycle efficiency (SCR)
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Date of download: 12/22/2017 Copyright © ASME. All rights reserved. From: Analyses of Simple and Intercooled Recuperated Direct Brayton Helium Gas Turbine Cycles for Generation IV Reactor Power Plants ASME J of Nuclear Rad Sci. 2016;3(1): doi: / Figure Legend: Sensitivity analysis—effect of component efficiencies on cycle efficiency (ICR)
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Date of download: 12/22/2017 Copyright © ASME. All rights reserved. From: Analyses of Simple and Intercooled Recuperated Direct Brayton Helium Gas Turbine Cycles for Generation IV Reactor Power Plants ASME J of Nuclear Rad Sci. 2016;3(1): doi: / Figure Legend: Sensitivity analysis—effect of component efficiencies on specific work (SCR)
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Date of download: 12/22/2017 Copyright © ASME. All rights reserved. From: Analyses of Simple and Intercooled Recuperated Direct Brayton Helium Gas Turbine Cycles for Generation IV Reactor Power Plants ASME J of Nuclear Rad Sci. 2016;3(1): doi: / Figure Legend: Sensitivity analysis—effect of component efficiencies on specific work (ICR)
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Date of download: 12/22/2017 Copyright © ASME. All rights reserved. From: Analyses of Simple and Intercooled Recuperated Direct Brayton Helium Gas Turbine Cycles for Generation IV Reactor Power Plants ASME J of Nuclear Rad Sci. 2016;3(1): doi: / Figure Legend: Sensitivity analysis—effect of compressor inlet temperature on cycle efficiency
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Date of download: 12/22/2017 Copyright © ASME. All rights reserved. From: Analyses of Simple and Intercooled Recuperated Direct Brayton Helium Gas Turbine Cycles for Generation IV Reactor Power Plants ASME J of Nuclear Rad Sci. 2016;3(1): doi: / Figure Legend: Sensitivity analysis—pressure losses
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