Formation Principle and Characteristics of Self-Supercharging Pulsed Water Jet

Author:

Ge Zhaolong,Ling Yuanfei,Tang Jiren,Lu Yiyu,Zhang Yangkai,Wang Lei,Yao Qi

Abstract

AbstractHigh-pressure pulsed water jet technology has considerable development potential in the field of rock fragmentation. To overcome the shortcomings of existing pulsed jets, a self-supercharging pulsed water jet (SSPWJ) generation method is proposed, which is based on the theory of the pulsed water jet and the principle of hydraulic boosting. The proposed method changes the flow direction of the fluid medium through the valve core to make the piston reciprocate in the cylinder and relies on the effective area difference between the front and rear chambers in the stroke stage of the piston to realize the organic combination of “pulse” and “supercharging” of the jet, thus forming an SSPWJ. On the basis of the formation principle of the SSPWJ, a SSPWJ testing platform was constructed, and tests were performed on the jet pressure acquisition, morphology capture, and granite erosion. Both the jet pressure and the jet morphology exhibited periodic changes, and a higher pulse pressure was obtained at lower inlet pressure. The error of the pressure ratio calculated according to the experimental results was <3% relative to the theoretical design value, confirming the feasibility of the method. The pulse pressure and pulse frequency are controllable; that is, as the inlet flow rate increases in the stroke stage of the piston, the pulse pressure and pulse frequency increase, and the pulse duration decreases. As the inlet flow rate increases in the backward-stroke stage of the piston, the pulse frequency increases, and the pulse pressure and pulse duration remain unchanged. Under the combined action of the water-hammer pressure, high-speed lateral flow, and high-frequency dynamic load of the SSPWJ, local flaky exfoliation was observed when the granite surface was eroded. The results of this study lay the foundation for enriching the theory of pulsed jet generation and expanding its application range.

Funder

National Outstanding Youth Science Fund Project of National Natural Science Foundation of China

Natural Science Foundation of Chongqing

Young Scientists Fund

Changjiang Scholar Program of Chinese Ministry of Education

Publisher

Springer Science and Business Media LLC

Subject

Industrial and Manufacturing Engineering,Mechanical Engineering

Reference31 articles.

1. A W Momber. Fluid jet erosion as a non-linear fracture process: A discussion. Wear, 2001, 250(1-12): 100–106.

2. A W Momber. An SEM-study of high-speed hydrodynamic erosion of cementitious composites. Wear, 2003, 34(2): 135-142.

3. S Y Liu, Y M Cui, Y Q Chen, et al. Numerical research on rock breaking by abrasive water jet-pick under confining pressure. International Journal of Rock and Ming Sciences, 2019, 120: 41-49.

4. Y Y Lu, F Huang, X C Liu, et al. On the failure pattern of sandstone impacted by high-velocity water jet. International Journal of Impact Engineering, 2015, 76: 67-74.

5. G S Li, Z H Shen, C S Zhou, et al. Investigation and application of self-resonating cavitating water jet in petroleum engineering. Petroleum Science and Technology, 2005, 23(1): 1-15.

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