LAPSE:2023.6784
Published Article

LAPSE:2023.6784
MODELING of Rarefied Gas Flows Inside a Micro-Nozzle Based on the DSMC Method Coupled with a Modified Gas−Surface Interaction Model
February 24, 2023
Abstract
In this study, we first considered the influence of micro-nozzle wall roughness structure on molecular collision and reflection behavior and established a modified CLL model. The DSMC method was used to simulate and analyze the flow of the micro-nozzle in the cold gas micro-propulsion system, and the deviation of simulation results before and after the improvement of CLL model were compared. Then, the rarefied flow characteristics under a small needle valve opening (less than 1%) were focused on the research, and the particle position, molecular number density, and spatial distribution of internal energy in the micro-nozzle were calculated. The spatial distributions of the flow mechanism in the micro-nozzle under different needle valve openings were compared and analyzed. It was found that when the needle valve opening is lower than 1%, the slip flow and transition flow regions move significantly upstream of the nozzle, the free molecular flow distribution region expands significantly, and the relationship between thrust force and needle valve opening is obviously different from that of medium and large needle valve openings. The effect of nitrogen temperature on the rarefied flow and thrust force is also discussed in this research. The numerical results showed that as gas temperature increases, the molecular internal energy, momentum, and molecular number density near the nozzle exit are enhanced. The thrust at small needle valve openings was significantly affected by the temperature of the working mass. The results of this study will provide key data for the design and development of cold gas micro-thrusters.
In this study, we first considered the influence of micro-nozzle wall roughness structure on molecular collision and reflection behavior and established a modified CLL model. The DSMC method was used to simulate and analyze the flow of the micro-nozzle in the cold gas micro-propulsion system, and the deviation of simulation results before and after the improvement of CLL model were compared. Then, the rarefied flow characteristics under a small needle valve opening (less than 1%) were focused on the research, and the particle position, molecular number density, and spatial distribution of internal energy in the micro-nozzle were calculated. The spatial distributions of the flow mechanism in the micro-nozzle under different needle valve openings were compared and analyzed. It was found that when the needle valve opening is lower than 1%, the slip flow and transition flow regions move significantly upstream of the nozzle, the free molecular flow distribution region expands significantly, and the relationship between thrust force and needle valve opening is obviously different from that of medium and large needle valve openings. The effect of nitrogen temperature on the rarefied flow and thrust force is also discussed in this research. The numerical results showed that as gas temperature increases, the molecular internal energy, momentum, and molecular number density near the nozzle exit are enhanced. The thrust at small needle valve openings was significantly affected by the temperature of the working mass. The results of this study will provide key data for the design and development of cold gas micro-thrusters.
Record ID
Keywords
DSMC method, molecular number density, needle valve opening, rarefied flow, thrust force, wall roughness structure
Subject
Suggested Citation
Liu X, Li D, Fu X, Gao Y, Wang X. MODELING of Rarefied Gas Flows Inside a Micro-Nozzle Based on the DSMC Method Coupled with a Modified Gas−Surface Interaction Model. (2023). LAPSE:2023.6784
Author Affiliations
Liu X: Beijing Institute of Control Engineering, Beijing 100190, China [ORCID]
Li D: Beijing Institute of Control Engineering, Beijing 100190, China
Fu X: Beijing Institute of Control Engineering, Beijing 100190, China
Gao Y: Beijing Institute of Control Engineering, Beijing 100190, China
Wang X: Beijing Institute of Control Engineering, Beijing 100190, China
Li D: Beijing Institute of Control Engineering, Beijing 100190, China
Fu X: Beijing Institute of Control Engineering, Beijing 100190, China
Gao Y: Beijing Institute of Control Engineering, Beijing 100190, China
Wang X: Beijing Institute of Control Engineering, Beijing 100190, China
Journal Name
Energies
Volume
16
Issue
1
First Page
505
Year
2023
Publication Date
2023-01-02
ISSN
1996-1073
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Original Submission
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PII: en16010505, Publication Type: Journal Article
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LAPSE:2023.6784
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https://doi.org/10.3390/en16010505
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Feb 24, 2023
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