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May 18, 2026Journal of Zhejiang University. Science A2 citations

Flow analysis of asymmetric clearance and optimization of pressure equalization grooves to mitigate hydraulic spool valve sticking

ZLZhen-hao LinYWYu-wei WangZMZhe-hui Ma

Key Points

  • This research aims to understand the mechanisms causing hydraulic spool valve sticking and to optimize its design.
  • Simulated fluid dynamics and particle behavior within the valve core's clearance.
  • Analyzed effects of inclination angle, clearance size, particle diameter, and PEG properties.
  • Proposed and optimized a triangular pressure equalization groove (Tri-PEG) with multi-objective optimization methods.
  • Tri-PEG reduced leakage by 12% compared to rectangular PEG, indicating enhanced sealing performance.
  • Particle concentration increased by 6% at the bottom of Tri-PEG, suggesting better particle management.
  • Optimal parameters include an arc-shaped radius of 0.200 mm and a groove depth of 0.392 mm.

Abstract

The hydraulic spool valve is a critical control component in aerospace hydraulic systems. However, complex working environments can cause the valve core to become stuck, thus severely restricting the performance of such valves. This in turn can hinder the precise control of hydraulic oil, reduce the stability of the hydraulic system, and lead to serious accidents in aerospace systems. The unbalanced radial force and solid particle intrusion into the fit clearance are the main factors behind this sticking. To better understand these issues, in this study, we simulated the fluid dynamics and particle behavior within the clearance of the valve core and analyzed the effects of inclination angle, clearance size, particle diameter, and pressure equalization groove (PEG) properties. The mechanism behind valve core sticking was revealed, and it was found that the PEG has an inhibitory effect on the unbalanced radial force and particle intrusion. Furthermore, we proposed an optimized structure for a triangular pressure equalization groove with an arc-shaped bottom (Tri-PEG). The structural parameters were determined through multi-objective optimization, with the objectives of minimizing the leakage at the clearance and maximizing the particle volume fraction at the bottom of the Tri-PEG. The optimal parameters were an arc-shaped radius of 0.200 mm, a groove depth of 0.392 mm, and a half groove width of 0.215 mm. Comparing Tri-PEG with a rectangular PEG, the leakage was reduced by 12%, and the particle concentration was increased by 6%. Overall, these findings serve as an important reference for alleviating spool valve sticking.

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Cite This Study

Lin et al. (2026) studied this question.

synapsesocial.com/papers/6a0aace55ba8ef6d83b70514https://doi.org/10.1631/jzus.a2500604
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