Gravitational Surface Vortex Formation and Suppression Control: A Review from Hydrodynamic Characteristics

Author:

Zheng Gaoan,Gu Zeheng,Xu Weixin,Lu Bin,Li Qihan,Tan Yunfeng,Wang Chengyan,Li LinORCID

Abstract

The energy-conversion stability of hydropower is critical to satisfy the growing demand for electricity. In low-head hydropower plants, a gravitational surface vortex is easily generated, which causes irregular shock vibrations that damage turbine performance and input-flow stability. The gravitational surface vortex is a complex fluid dynamic problem with high nonlinear features. Here, we thoroughly investigate its essential hydrodynamic properties, such as Ekman layer transport, heat/mass transfer, pressure pulsation, and vortex-induced vibration, and we note some significant scientific issues as well as future research directions and opportunities. Our findings show that the turbulent Ekman layer analytical solution and vortex multi-scale modeling technology, the working condition of the vortex across the scale heat/mass transfer mechanism, the high-precision measurement technology for high-speed turbulent vortexes, and the gas–liquid–solid three-phase vortex dynamics model are the main research directions. The vortex-induced vibration transition mechanism of particle flow in complex restricted pipelines, as well as the improvement of signal processing algorithms and a better design of anti-spin/vortex elimination devices, continue to draw attention. The relevant result can offer a helpful reference for fluid-induced vibration detection and provide a technical solution for hydropower energy conversion.

Funder

Zhejiang Provincial Natural Science Foundation

Zhejiang Province Postdoctoral Scientific Research Preferred Funding Project

Open Foundation of the State Key Laboratory of Fluid Power and Mechatronic Systems

Publisher

MDPI AG

Subject

Process Chemistry and Technology,Chemical Engineering (miscellaneous),Bioengineering

Reference111 articles.

1. Renewable energy harvesting by vortex-induced motions: Review and benchmarking of technologies;Rostami;Renew. Sustain. Energy Rev.,2017

2. Phase change material-integrated latent heat torage systems for sustainable energy solutions;Waseem;Energy Environ. Sci.,2021

3. A review of methods for vortex identification in hydroturbines;Zhang;Renew. Sustain. Energy Rev.,2018

4. Li, L., Lu, B., Xu, W.X., Gu, Z.H., Yang, Y.S., and Tan, D.P. Multiphase coupling transport evolution mechanism of the free sink vortex, Acta Phys. Sin., in press.

5. Solving the runner blade crack problem for a Francis hydro-turbine operating under condition-complexity;Zhu;Renew. Energy,2020

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