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May 8, 2026Physics of Fluids0 citations

Exponential decay of shear-driven surface erosion in confined abrasive swirling flow

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ZCZhaoxiang ChenXi'an Jiaotong UniversityLSLin SunXi'an Jiaotong UniversityYSYang SangBeijing Machine Tool Research Institute

Key Points

  • This research aims to investigate the time-dependent decay of shear-driven surface erosion in confined flows and the influence of boundary morphology on erosion rates.
  • Conducted experiments in a confined swirling abrasive flow system to measure erosion rates.
  • Developed an exponential decay model to describe erosion and morphology feedback.
  • Analyzed three successive stages of erosion based on observed changes in surface texture.
  • Erosion rates and boundary roughness exhibited an approximately exponential decay over time.
  • Measured erosion height showed close agreement with predictions, within 9.0 ± 1.5% relative error.
  • Identified three stages: rapid defect removal, smoother shear-dominated erosion, and a late stage with diminished surface improvement.

Abstract

Motivated by near-wall transport and flow-assisted surface evolution in particle-laden confined flows, this study examines the time-dependent decay of shear-driven surface erosion in a rotational abrasive flow configuration. Conventional formulations often treat the erosion rate as linear in time and thereby neglect the feedback between evolving boundary morphology and local near-wall transport. Here, we formulate a physics-informed exponential decay model by treating removable surface asperities as a gradually depleted population of effective erosion sites. In this interpretation, the measured decay of erosion rate is linked to the progressive weakening of morphology-induced transport enhancement as the surface smoothens. Experiments on a confined swirling abrasive flow platform show that both the instantaneous erosion rate and the boundary roughness decrease approximately exponentially with time. Least-squares fitting of the erosion rate gives R2 = 0.99, and the predicted erosion height agrees with experiments within 9.0 ± 1.5% relative error. The measurements also suggest three successive stages (stages I, II, and III): rapid initial removal of prominent defects, a smoother shear-dominated stage with reduced erosion efficiency, and a late stage in which prolonged interaction no longer improves the surface. The results provide a compact fluid-mechanical framework for interpreting transient surface evolution in shear-driven particle-laden flows beyond a process-specific time-correction formula.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69fd7eb0bfa21ec5bbf06e6ahttps://doi.org/10.1063/5.0332945
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