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April 12, 2026Aerospace0 citationsOpen Access

Temperature Dependence of Cavitation Characteristics in a Space Micropump

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DZDanyang ZhouJLJintao LiuLMLilei Miao

Key Points

  • The aim is to understand how varying temperatures affect cavitation behavior in a space micropump under microgravity.
  • Numerical investigation using a multiphase flow model coupled with a thermal modified cavitation model.
  • Application of the SST turbulence model to analyze cavitating flow.
  • Examination of cavitation characteristics under different flow rates and temperatures.
  • Cavitation intensity rises at low temperatures, reducing head and efficiency and increasing shaft power slightly.
  • Higher temperatures suppress cavitation, improving performance or causing minimal degradation.
  • Lower temperatures lead to more extensive vapor fractions and increased flow distortion.
  • Cavitation results in limited additional losses overall, but entropy generation increases significantly at low temperatures and high flow rates.

Abstract

This study numerically investigates the influence of different fluid temperatures on the cavitation characteristics of a space-use micropump under microgravity conditions. A homogeneous multiphase model coupled with a thermal modified Zwart–Gerber–Belamri cavitation model is employed, and the SST turbulence model is applied to resolve the cavitating flow under rated and off-design flow rates. Results indicate that cavitation behavior is strongly dependent on both temperature and flow rate. At low temperatures, cavitation intensity increases, leading to reductions in head and efficiency and a slight increase in shaft power. In contrast, elevated temperatures suppress cavitation development, resulting in milder performance degradation and, in some cases, slight improvements in head and shaft power. Internal flow analysis reveals that lower temperatures promote more extensive vapor fraction distributions and greater flow distortion, while entropy production analysis shows that cavitation contributes limited additional loss overall, though entropy generation rises markedly under combined low temperature and high flow rate conditions. The findings highlight that cavitation effects are more pronounced at low temperatures and are further amplified at higher flow rates, providing insights for the design and reliable operation of space micropumps in on-orbit thermal management systems.

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Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/69db37ca4fe01fead37c5d8chttps://doi.org/10.3390/aerospace13040355
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