PG-EAM - Programa de Pós-Graduação em Engenharia Aeronáutica e Mecânica
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Artigo 2015

Thermodynamic analysis and optimization of a Closed Regenerative Brayton Cycle for nuclear space power systems

Autores

Braz Filho, Francisco A.
Guimarães, Lamartine N.F.

Applied Thermal Engineering , vol. 90 , pp. 250-257 , Article 6787

ISSN: 13594311

55
Citações
3
Autores

Resumo

© 2015 Elsevier Ltd.Abstract Nuclear power systems turned to space electric propulsion differ strongly from usual ground-based power systems regarding the importance of overall size and mass. For propulsion power systems, size and mass are essential drivers that should be minimized during conception processes. Considering this aspect, this paper aims the development of a design-based model of a Closed Regenerative Brayton Cycle that applies the thermal conductance of the main components in order to predict the energy conversion performance, allowing its use as a preliminary tool for heat exchanger and radiator panel sizing. The centrifugal-flow turbine and compressor characterizations were achieved using algebraic equations from literature data. A binary mixture of Helium-Xenon with molecular weight of 40 g/mole is applied and the impact of the components sizing in the energy efficiency is evaluated in this paper, including the radiator panel area. Moreover, an optimization analysis based on the final mass of heat the exchangers is performed.

Palavras-chave

Brayton Nuclear Optimization Simulation Space

Energy Engineering and Power Technology (ENER) Mechanical Engineering (ENGI) Fluid Flow and Transfer Processes (CENG) Industrial and Manufacturing Engineering (ENGI)
: Scopus
Última atualização: 2026-06-25
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PII: S1359431115006535