Experimental, theoretical and CFD analysis of hypergravity centrifuge aerodynamics

The aerodynamic environment inside large high-speed hypergravity centrifuges can affect drive power requirements, windage heat generation, pressure loading, and the operation of internal components. This study investigates the aerodynamic behaviour of a reduced-pressure hypergravity centrifuge using a one-third-scale Centrifugal Hypergravity and Interdisciplinary Experimental Facility test rig, torque-balance estimation, and compressible computational fluid dynamics (CFD) simulations. The results show that the internal airflow forms a relatively stable rotating core within approximately 0.8rb, followed by an outer shear-diffusion region. The air-to-arm velocity ratio remains within a narrow range under the tested conditions, with the CFD prediction consistent with the experimental value. Windage power increases strongly with arm speed and follows an approximately cubic dependence on angular velocity, while pressure reduction decreases air density and substantially reduces windage power and aerodynamic loading. Frequency-domain analysis under the 1000 g/101 kPa condition indicates that the measured pressure-difference signals contain repeatable rotation-related harmonic components. These results provide reference information for aerodynamic assessment and subsequent structural modal or vibration evaluation of high-speed enclosed centrifuges, while the limitations associated with scale, geometry, and measurement conditions are recognised.

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Publication Details

Journal
International Journal of Physical Modelling in Geotechnics
Published
2026-09-30
DOI
https://doi.org/10.1680/jphmg.25.00055
Primary Topic
Spacecraft and Cryogenic Technologies
Type
article
Field-Weighted Citation Impact
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Experimental, theoretical and CFD analysis of hypergravity centrifuge aerodynamics

Fangfang Xie, 凌道盛, Yu Zhao, Guohua Li et al.
International Journal of Physical Modelling in Geotechnics
Spacecraft and Cryogenic Technologies
article

Experimental, theoretical and CFD analysis of hypergravity centrifuge aerodynamics

Fangfang Xie, 凌道盛, Yu Zhao, Guohua Li, Jianjing Zheng, Xiao Han, Jianyong Liu
article en

Abstract

The aerodynamic environment inside large high-speed hypergravity centrifuges can affect drive power requirements, windage heat generation, pressure loading, and the operation of internal components. This study investigates the aerodynamic behaviour of a reduced-pressure hypergravity centrifuge using a one-third-scale Centrifugal Hypergravity and Interdisciplinary Experimental Facility test rig, torque-balance estimation, and compressible computational fluid dynamics (CFD) simulations. The results show that the internal airflow forms a relatively stable rotating core within approximately 0.8rb, followed by an outer shear-diffusion region. The air-to-arm velocity ratio remains within a narrow range under the tested conditions, with the CFD prediction consistent with the experimental value. Windage power increases strongly with arm speed and follows an approximately cubic dependence on angular velocity, while pressure reduction decreases air density and substantially reduces windage power and aerodynamic loading. Frequency-domain analysis under the 1000 g/101 kPa condition indicates that the measured pressure-difference signals contain repeatable rotation-related harmonic components. These results provide reference information for aerodynamic assessment and subsequent structural modal or vibration evaluation of high-speed enclosed centrifuges, while the limitations associated with scale, geometry, and measurement conditions are recognised.

International Journal of Physical Modelling in Geotechnics
Institute of Spacecraft System Engineering (CN), Zhejiang University (CN)
Affordable and clean energy
Openalex Percentile: Top 8%
Spacecraft and Cryogenic Technologies
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Experimental, theoretical and CFD analysis of hypergravity centrifuge aerodynamics — Fangfang Xie, 凌道盛, et al. · International Journal of Physical Modelling in Geotechnics (2026) | TGRS Research Map | TGRS