Applied thermal engineering2022,Vol.20714.DOI:10.1016/j.applthermaleng.2022.118063

Short nozzles design for real gas supersonic flow using the method of characteristics

Restrepo J.C. Bolanos-Acosta A.F. Simoes-Moreira J.R.
Applied thermal engineering2022,Vol.20714.DOI:10.1016/j.applthermaleng.2022.118063

Short nozzles design for real gas supersonic flow using the method of characteristics

Restrepo J.C. 1Bolanos-Acosta A.F. 1Simoes-Moreira J.R.1
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作者信息

  • 1. SISEA - Renewable and Alternative Energy Systems Laboratory in the Mechl. Eng. Department at Escola Politécnica Universidade de S?o Paulo
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Abstract

Finding a supersonic nozzle minimum length is a classical application of the method of characteristics (MOC) for aerospace propulsion technology among many other applications, such as air and vapor handling processes. That methodology allows design contoured nozzle free of oblique shock waves created at sharp area changes in short nozzles. While the designing technique is well established in textbooks for ideal gas flow, the use of the MOC technique for real gas is problematic due to the highly complex fluid behavior, captured by modern real gas equations-of-state (EOS). This work presents the MOC devised for real gases using multi-parameter equations-of-state (MPEOS) for different substances and compositions. This paper also compares the MPEOS solution obtained from other classical EOS, such as Peng–Robinson, and the ideal gas equation to establish the optimal application range for each EOS and their effect on the nozzle wall construction. The study was carried out for a commercial fluid refrigerant, pure carbon dioxide, and a CO2?CH4 mixture. The methodology can be used for designing industrial pieces of equipment, such as turbo-machineries and supersonic gas separators or supersonic ejectors, to evaluate the isentropic flow expansion within those devices.

Key words

Compressible flow/Equation of state/Non-ideal gas/Nozzle geometry/Supercritical carbon dioxide/Supersonic flow

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出版年

2022
Applied thermal engineering

Applied thermal engineering

EISCI
ISSN:1359-4311
被引量3
参考文献量37
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