Cardiff University, School of Engineering, Hydro-Environmental Research Centre, Wales, UK.
Karlsruhe Institute of Technology, Institute of Water and Environment, Karlsruhe, Germany; Water Resources and Ecosystems Department, IHE Delft, Delft, the Netherlands; Presently: Imperial College London, Civil and Environmental Department, London, UK.
Water Res. 2024 May 1;254:121306. doi: 10.1016/j.watres.2024.121306. Epub 2024 Feb 13.
Plastic pollution is overflowing in rivers. A limited understanding of the physics of plastic transport in rivers hinders monitoring, the prediction of plastic fate and restricts the implementation of effective mitigation strategies. This study investigates two unexplored aspects of plastic transport dynamics across the near-surface, suspended and bed load layers: (i) the complex settling behaviour of plastics and (ii) their influence on plastic transport in river-like flows. Through hundreds of settling tests and thousands of 3D reconstructed plastic transport experiments, our findings show that plastics exhibit unique settling patterns and orientations, due to their geometric anisotropy, revealing a multimodal distribution of settling velocities. In the transport experiments, particle-bed interactions enhanced mixing beyond what established turbulent transport theories (Rouse profile) could predict in low-turbulence conditions, which extends the bed load layer beyond the classic definition of the bed load layer thickness for natural sediments. We propose a new vertical structure of turbulent transport equation that considers the stochastic nature of heterogeneous negatively buoyant plastics and their singularities.
塑料污染在河流中泛滥。对河流中塑料输运物理过程的有限认识阻碍了监测、预测塑料命运的工作,并限制了有效缓解策略的实施。本研究调查了近表面、悬浮和底流层中塑料输运动力学的两个尚未探索的方面:(i)塑料的复杂沉降行为,(ii)它们对河流流动中塑料输运的影响。通过数百次沉降试验和数千次 3D 重建塑料输运实验,我们的研究结果表明,由于塑料的几何各向异性,它们表现出独特的沉降模式和方向,揭示了沉降速度的多峰分布。在输运实验中,颗粒-床面相互作用增强了混合,超出了传统的基于紊流输运理论(Rouse 分布)的预测,这将底流层的范围扩展到了自然沉积物的经典底流层厚度定义之外。我们提出了一个新的考虑非均匀负浮力塑料的随机特性及其奇点的紊流输运方程的垂直结构。