PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 5, 2026Discover Applied Sciences0 citationsOpen Access

Eliminating air entrainment in complex siphon drainage systems: a physical modelling approach

View Full Paper
LGLei GuoBHBen-sheng HuangZLZhong-feng Liu

Key Points

  • This research aims to develop a strategy to eliminate air entrainment in coastal power plant discharge systems.
  • Developed a 1:20 scale physical model of a complex siphon drainage system.
  • Analyzed air entrainment mechanisms in siphon wells and discharge structures.
  • Designed a solution using a flow-limiting orifice plate and a three-stage de-aeration well.
  • Achieved over 95% elimination of air entrainment during operational periods.
  • Maintained upstream backwater rise below 0.5m under extreme high-tide conditions.
  • Validated the effectiveness of the integrated source control strategy for environmental management.

Abstract

The generation of persistent foam in the cooling water discharge of coastal power plants poses significant environmental and operational challenges. This phenomenon is fundamentally driven by a "hydro-chemical coupling" mechanism, where hydraulic air entrainment generates bubbles that are subsequently stabilized by surfactants in the seawater. While chemical defoaming is costly and potentially polluting, existing physical solutions often fail to address the complex, transient flow regimes found in tidal discharge systems. To address this, this study proposes an integrated "source control" strategy to eliminate hydraulic air entrainment. Using a comprehensive 1:20 scale physical model, we analyzed the air entrainment mechanisms in a complex discharge system comprising siphon wells, a long culvert, and a steep terminal drop. We designed and validated a combined abatement solution featuring a flow-limiting orifice plate in the siphon well and a novel three-stage de-aeration well at the outlet. Experimental results demonstrate that this configuration effectively eliminates air entrainment for over 95% of the operational period. Furthermore, the hydraulic impact is minimal, with the upstream backwater rise remaining below 0.5m even under extreme high-tide conditions. This study establishes a robust, environmentally friendly engineering methodology for managing foam in complex hydraulic systems dominated by large tidal variations.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Guo et al. (2026) studied this question.

synapsesocial.com/papers/69a91d8dd6127c7a504c0732https://doi.org/10.1007/s42452-026-08448-w
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1From CO$_2$ Sequestration to Hydrogen Storage: Further Utilization of Depleted Gas Reservoirs2025 · 71 citations
  2. 2Effects of Crosslinking Agents and Reservoir Conditions on the Propagation of Fractures in Coal Reservoirs During Hydraulic Fracturing2025 · 47 citations
  3. 3Identifying Flow Patterns in Water Pipelines Using Complex Network Theory2021 · 9 citations
  4. 4Radon as a Natural Tracer for Monitoring NAPL Groundwater Contamination2020 · 14 citations
  5. 5Self-entrainment of air on stepped spillways2010 · 100 citations