4.4 Article

Physical and numerical modeling of swirling flow in a scroll vortex intake

期刊

出版社

ELSEVIER
DOI: 10.1016/j.jher.2021.11.004

关键词

Scroll vortex intake; Swirling flow; Air-core; Physical modeling; Laser Doppler Anemometry; Numerical modeling; Volume-of-fluid; Computational fluid dynamics; Stormwater management

资金

  1. General Research Fund from the Hong Kong Research Grants Council [RGC HKU/HKUST 714309]
  2. HKUST Initiation Grant [IGN17EG05]

向作者/读者索取更多资源

Scroll vortex intakes are commonly used hydraulic structures in water supply, drainage, and sewerage systems, creating stable vortex flow using eccentric approach channels and vortex chambers. This study presents the first comprehensive measurement of the 3D flow field of a scroll vortex intake using Laser Doppler Anemometry, revealing that the vortex flow in the chamber resembles a free vortex with reduced circulation at the outlet.
Scroll vortex intakes are hydraulic structures commonly used in water supply, drainage and sewerage systems. Water flows into the intake via an eccentric approach channel and a vortex chamber imparts swirl to the flow, leading to a stable air core vortex along the dropshaft. Although much effort has been devoted to investigate the scroll vortex flow, yet the understanding on its hydraulic characteristics is still far from complete due to a lack of detailed velocity field measurements. This paper presents the first comprehensive measurement of the three-dimensional (3D) flow field of a scroll vortex intake using non-intrusive Laser Doppler Anemometry (LDA). A validated 3D Computational Fluid Dynamics (CFD) model with the Volume-Of-Fluid (VOF) method is developed for interpreting the measurement. It is found that the vortex flow in the scroll chamber resembles a free vortex and the circulation is approximately equal to that at the chamber inlet, with a thin bottom boundary layer. The vortex flow at the bellmouth outlet possesses a circulation constant smaller than that in the chamber, and its vertical velocity component is approximately constant across the flow thickness.

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