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Article

The Fracture Propagation Behavior of Coal Masses Under Various Waveforms, Amplitudes, and Frequencies of Water Hammer Pulsating Pressure: Numerical Simulation and Experimental Validation

1
College of Safety and Emergency Management Engineering, Taiyuan University of Technology, Taiyuan 030024, China
2
Postdoctoral Workstation, Shanxi Coking Coal Group Co., Ltd., Taiyuan 030021, China
*
Authors to whom correspondence should be addressed.
Water 2025, 17(18), 2743; https://doi.org/10.3390/w17182743
Submission received: 27 July 2025 / Revised: 3 September 2025 / Accepted: 12 September 2025 / Published: 17 September 2025
(This article belongs to the Section Hydraulics and Hydrodynamics)

Abstract

Deep coal seams have low permeability and poor wettability, making gas extraction difficult. This study presents a zero-energy consumption pulsating water hammer fracturing technique that uses the gravitational potential energy of high-elevation water and the pulsating pressure waves from the water hammer effect to induce fatigue damage in coal, creating an interconnected network of cracks. The research included experiments on water hammer pressure waves, multi-physics field coupling simulations at different flow rates, and discrete element simulations to analyze the fracture behavior of underwater hammer pressure. Results showed that initial flow velocity impacts the water hammer pressure’s intensity, range, and duration. Pressure shock waves propagate as expansion and compression waves, with peaks rising from 4.99 to 19.91 MPa within a 2–12 m/s flow rate range. Water hammer pressure reduced fracture initiation pressure by 23% compared to static pressure loading and increased fracture numbers by 13.4%. With pressure amplitudes between 2–18 MPa, fractures tripled, and the damaged area grew from 2.2 to 11%. A variable frequency combination loading strategy, starting with low frequency and then high frequency, was more effective for fracture propagation. This study offers a theoretical foundation for applying this technology to enhance coal seam permeability and gas pumping efficiency.
Keywords: water hammer; pulsating pressure; wave propagation; fracture propagation; numerical simulation water hammer; pulsating pressure; wave propagation; fracture propagation; numerical simulation

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MDPI and ACS Style

Nian, J.; Zhu, J.; Lv, X.; Fu, J. The Fracture Propagation Behavior of Coal Masses Under Various Waveforms, Amplitudes, and Frequencies of Water Hammer Pulsating Pressure: Numerical Simulation and Experimental Validation. Water 2025, 17, 2743. https://doi.org/10.3390/w17182743

AMA Style

Nian J, Zhu J, Lv X, Fu J. The Fracture Propagation Behavior of Coal Masses Under Various Waveforms, Amplitudes, and Frequencies of Water Hammer Pulsating Pressure: Numerical Simulation and Experimental Validation. Water. 2025; 17(18):2743. https://doi.org/10.3390/w17182743

Chicago/Turabian Style

Nian, Jun, Jingchi Zhu, Xiaobo Lv, and Jinqi Fu. 2025. "The Fracture Propagation Behavior of Coal Masses Under Various Waveforms, Amplitudes, and Frequencies of Water Hammer Pulsating Pressure: Numerical Simulation and Experimental Validation" Water 17, no. 18: 2743. https://doi.org/10.3390/w17182743

APA Style

Nian, J., Zhu, J., Lv, X., & Fu, J. (2025). The Fracture Propagation Behavior of Coal Masses Under Various Waveforms, Amplitudes, and Frequencies of Water Hammer Pulsating Pressure: Numerical Simulation and Experimental Validation. Water, 17(18), 2743. https://doi.org/10.3390/w17182743

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