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April 10, 2026Physics of Fluids1 citations

Physical modeling and performance-based optimization of interlocking floating-sphere systems for mitigating landslide-generated impulse waves

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HWHuachen WangUniversity of WaterlooWXWeiya XuHohai UniversityQHQingfu HuangPowerChina (China)

Key Points

  • The aim is to evaluate the performance of an interlocking floating-sphere system for mitigating wave impacts from landslides in reservoirs.
  • Developed a large-scale three-dimensional model of a landslide scenario.
  • Implemented a framework to evaluate wave transmission, reflection, and hydrodynamic pressure.
  • Conducted experiments to assess different deployment configurations of the interlocking floating-sphere system.
  • Identified five key mechanisms of energy dissipation: wave overtopping, turbulence, backflow mixing, multipath reflection, and trajectory disturbance.
  • Demonstrated that near-source placement reduces wave energy most effectively.
  • Mid-channel placements enhance dissipation efficiency during breaking and flow interference.
  • Near-dam placement reshapes the incident wavefront to reduce focusing at the right bank.

Abstract

Landslide-generated impulse waves pose critical threats to reservoir dams in high-mountain canyon environments, yet wave attenuation structures suitable for narrow, confined, and topographically complex settings remain limited. This study develops a large-scale three-dimensional physical model of a typical landslide in the Gushui Reservoir to assess a newly proposed interlocking floating-sphere (IFS) system as a flexible wave attenuation measure. A comprehensive evaluation framework integrating transmission, reflection, and hydrodynamic pressure metrics is established to quantify attenuation performance under various deployment configurations. The experiments reveal five fundamental energy dissipation mechanisms of the IFS: wave overtopping and breakup, turbulence generation, backflow-induced mixing, multipath reflection, and disturbance of water-particle trajectories. Attenuation performance is strongly dependent on deployment position. Near-source placement most effectively reduces overall wave energy, mid-channel placement achieves the highest dissipation efficiency by enhancing breaking and flow-interference processes, and near-dam placement suppresses hazardous right-bank focusing by reshaping the incident wavefront. Multi-row layouts expand the protected area but do not yield additive benefits due to phase interactions among reflected waves. The results demonstrate that the IFS provides an effective and adaptable solution for mitigating impulse waves in mountainous reservoirs and offers practical guidance for optimizing deployment strategies in narrow canyon environments.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69d896166c1944d70ce074a4https://doi.org/10.1063/5.0330149
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Also Consider

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

  1. 1A hazard assessment framework for landslide-induced impulse waves in high-dam reservoir2026
  2. 2Potential Impulse Wave Analysis for Sejiang Deforming Slope on the Near-Dam Reservoir Bank of Bala Hydropower Station of China2026
  3. 3Physical Model Experimental Study on Landslide-Generated Impulse Waves: A Case of Near-Dam Reservoir Landslide on the Upper Yellow River of China2026
  4. 4Computational investigation of the relationship between landslide-related conditions and resultant dam overtopping waves2024 · 3 citations
  5. 5Three‐Dimensional Numerical Investigation of Landslide Generated Impulse Waves: Generation, Propagation and Overtopping2026