European Journal of Environmental and Civil engineering· 2026Q2
Dynamic modulation of pressure waveforms on slurry penetration in swirl pulsating grouting: performance evaluation and fluid-mechanical mechanisms
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- Q2SCImago
- 2026year
Short summary
A novel swirl pulsating pressure grouting (SPPG) technique with a triangular waveform achieved 20.21% better energy retention than a square waveform, minimizing inertial dissipation and improving slurry penetration.
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Key points
- A novel swirl pulsating pressure grouting (SPPG) technique was developed and modeled using a transient two-phase flow model.
- The triangular pressure waveform demonstrated superior slurry penetration performance compared to sinusoidal, sawtooth, and square waveforms.
- Abrupt waveforms (sawtooth, square) caused extreme pressure gradients (up to 1.48×10⁵ Pa/s) and high energy dissipation.
- The smooth triangular waveform minimized inertial dissipation (max gradient 1.95×10³ Pa/s), retaining 20.21% more energy than the square waveform.
AI-generated from the title and abstract; the full text is not read.
Abstract
Although dynamic pressure grouting mitigates particle clogging, the mechanisms of different pressure waveforms on slurry penetration remain elusive. This study proposes a swirl pulsating pressure grouting (SPPG) technique and establishes a three-dimensional transient two-phase flow model coupling the volume of fluid method, Realisable k−ε turbulence model, and Ergun equation. Validated by laboratory experiments, an L25(56) orthogonal array was designed to investigate triangular, sinusoidal, sawtooth, and square waveforms. Tested boundaries included particle sizes of 0.22 to 1.5 mm, mean pressures of 0.08 to 0.14 MPa, and pulsation frequencies of 5 to 20 Hz. A novel Penetration Performance Index (PPI) reveals the triangular waveform exhibits the best comprehensive performance. Fluid-mechanical analyses demonstrate that abrupt waveforms like the sawtooth and square waves induce extreme local pressure gradients reaching 1.48×105 Pa/s, triggering severe kinetic energy dissipation. Conversely, the smooth triangular waveform minimises inertial dissipation with a maximum gradient of only 1.95×103 Pa/s, achieving a 20.21% energy retention advantage over the square waveform. These findings provide actionable guidelines for tailoring pressure waveforms to specific geological conditions.
The authors' abstract, as published at the source. European Journal of Environmental and Civil engineering, 2026 · DOI ↗
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Field: Civil and Structural Engineering
Civil and Structural EngineeringEngineering