Molecular Dynamics Simulation of a Jet in a Binary System at Supercritical Environment

With the development of large-thrust liquid rocket engines, the behavior of liquid in supercritical conditions arouses increasing public interest. Due to the high pressure and temperature of the combustion chamber, fuel reaches its critical point much more easily, and enters supercritical conditions...

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Main Authors: Qingfei Fu, Zixuan Fang, Yunxiao Zhang, Lijun Yang
Format: Article
Language:English
Published: MDPI AG 2018-12-01
Series:Molecules
Subjects:
Online Access:http://www.mdpi.com/1420-3049/24/1/31
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author Qingfei Fu
Zixuan Fang
Yunxiao Zhang
Lijun Yang
author_facet Qingfei Fu
Zixuan Fang
Yunxiao Zhang
Lijun Yang
author_sort Qingfei Fu
collection DOAJ
description With the development of large-thrust liquid rocket engines, the behavior of liquid in supercritical conditions arouses increasing public interest. Due to the high pressure and temperature of the combustion chamber, fuel reaches its critical point much more easily, and enters supercritical conditions. Due to the drastic changes in the physical properties of the fluid near the critical point, it is usually difficult to simulate the fluid motion using traditional computational fluid dynamic methods; but molecular dynamics (MD) can simulate fluid motion at the molecular level. In view of the engineering application, the physical properties of a binary system consisting of argon and nitrogen, and the stability of subcritical jets sprayed into supercritical environment, has been studied here using the MD method. First, the molecular dynamic simulation of the equation of state (EOS) of the mixture was put forward. Four conditions, with different mixing ratios of nitrogen, were designed. The results showed that the mixing ratio of nitrogen noticeably affected the results; these results were compared with the Soave-Redich-Kwong (SRK) EOS. Second, a simulation was conducted of subcritical nitrogen jet sprayed into a supercritical argon environment. After analyzing the results, the jet density and temperature distributions were obtained and the disturbance growth rate of the shear layer was analyzed.
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spelling doaj.art-9f956b0de29042c68050641d36eb01772022-12-22T00:47:33ZengMDPI AGMolecules1420-30492018-12-012413110.3390/molecules24010031molecules24010031Molecular Dynamics Simulation of a Jet in a Binary System at Supercritical EnvironmentQingfei Fu0Zixuan Fang1Yunxiao Zhang2Lijun Yang3School of Astronautics, Beihang University, Beijing 100191, ChinaSchool of Astronautics, Beihang University, Beijing 100191, ChinaSchool of Astronautics, Beihang University, Beijing 100191, ChinaSchool of Astronautics, Beihang University, Beijing 100191, ChinaWith the development of large-thrust liquid rocket engines, the behavior of liquid in supercritical conditions arouses increasing public interest. Due to the high pressure and temperature of the combustion chamber, fuel reaches its critical point much more easily, and enters supercritical conditions. Due to the drastic changes in the physical properties of the fluid near the critical point, it is usually difficult to simulate the fluid motion using traditional computational fluid dynamic methods; but molecular dynamics (MD) can simulate fluid motion at the molecular level. In view of the engineering application, the physical properties of a binary system consisting of argon and nitrogen, and the stability of subcritical jets sprayed into supercritical environment, has been studied here using the MD method. First, the molecular dynamic simulation of the equation of state (EOS) of the mixture was put forward. Four conditions, with different mixing ratios of nitrogen, were designed. The results showed that the mixing ratio of nitrogen noticeably affected the results; these results were compared with the Soave-Redich-Kwong (SRK) EOS. Second, a simulation was conducted of subcritical nitrogen jet sprayed into a supercritical argon environment. After analyzing the results, the jet density and temperature distributions were obtained and the disturbance growth rate of the shear layer was analyzed.http://www.mdpi.com/1420-3049/24/1/31molecular dynamicssupercritical environmentequation of stategrowth rate
spellingShingle Qingfei Fu
Zixuan Fang
Yunxiao Zhang
Lijun Yang
Molecular Dynamics Simulation of a Jet in a Binary System at Supercritical Environment
Molecules
molecular dynamics
supercritical environment
equation of state
growth rate
title Molecular Dynamics Simulation of a Jet in a Binary System at Supercritical Environment
title_full Molecular Dynamics Simulation of a Jet in a Binary System at Supercritical Environment
title_fullStr Molecular Dynamics Simulation of a Jet in a Binary System at Supercritical Environment
title_full_unstemmed Molecular Dynamics Simulation of a Jet in a Binary System at Supercritical Environment
title_short Molecular Dynamics Simulation of a Jet in a Binary System at Supercritical Environment
title_sort molecular dynamics simulation of a jet in a binary system at supercritical environment
topic molecular dynamics
supercritical environment
equation of state
growth rate
url http://www.mdpi.com/1420-3049/24/1/31
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AT zixuanfang moleculardynamicssimulationofajetinabinarysystematsupercriticalenvironment
AT yunxiaozhang moleculardynamicssimulationofajetinabinarysystematsupercriticalenvironment
AT lijunyang moleculardynamicssimulationofajetinabinarysystematsupercriticalenvironment