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When atmospheric particles deposit to the ocean, their settling velocities and residence times associated are critical for their effects on oceanic ecosystems. We developed a hydrostatic sedimentation method using video imaging techniques to track particles of 5-20 μm in diameter falling into seawater and determine the particle settling velocities in relation to their diameter, shape, organic matter contained, and seawater salinity. The measured settling velocities varied from 0.025 to 0.41 mm/s. Irregular particle shape and organic matter contained in particles also, however, reduced the values. The settling velocities were decelerated by the dissolution process of particle in seawater. Combined with the experimental results, a formula for calculating the settling velocity formulae for atmospheric particles was estimated. Using this equation, the residence time of particles is estimated to be less than one month in continental shelf sea and more than 100 days in the oceans.
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http://dx.doi.org/10.1016/j.marpolbul.2024.116472 | DOI Listing |
Polymers (Basel)
August 2025
Department of Mechanical Engineering, Faculty of Engineering, Chulalongkorn University, Bangkok 10330, Thailand.
Direct ink writing (DIW) has emerged as a powerful technique for functional-structure fabrication. However, its application to materials with heterogeneous or time-dependent rheology remains limited. This study introduces dual-mode electropneumatic extrusion, supported by a real-time digital twin.
View Article and Find Full Text PDFWater Res
August 2025
Department of Civil and Environmental Engineering, University of Missouri, Columbia, MO, USA; Missouri Water Center, Columbia, MO, USA. Electronic address:
Microplastics (MPs) exposure to environmental conditions results in weathering, alters their physicochemical properties, and subsequently influences their mobility in aquatic systems. This study aims to investigate the interrelated roles of MP type and weathering conditions on their terminal settling/rise velocities and subsequently distribution in the water column under turbulent flow to further inform sampling methodologies. Low density polyethylene (LDPE), polyvinyl chloride (PVC), and ground tire rubber (GTR) were subjected to accelerated photodegradation and sedimentation processes, and biofilm was grown on LDPE and GTR MPs.
View Article and Find Full Text PDFACS Omega
August 2025
School of Petrochemical Engineering Environment, Zhejiang Ocean University, Zhoushan, Zhejiang 306022, China.
Horizontal well technology has emerged as a key approach in oil and gas development, particularly for addressing sand production and water breakthrough in offshore reservoirs. To improve the design and efficiency of gravel packing in water control completions, a novel two-dimensional, time-dependent numerical model is developed to simulate slurry flow behavior in horizontal sections. The model accounts for the coupled flow in the screen-wellbore and screen-base pipe annuli, incorporating governing equations for momentum, mass conservation, formation filtration, and gravel settling.
View Article and Find Full Text PDFSci Rep
August 2025
Department of Computational and Applied Mechanics, Federal University of Juiz de Fora, Juiz de Fora, 36036-900, Brazil.
This study presents a hybrid modeling framework for predicting proppant settling rate (PSR) in hydraulic fracturing by integrating symbolic physics-based derivations, parametric simulations, and ensemble machine learning. Symbolic expressions were formulated using Stokes' law, drag equations, and pressure-gradient dynamics. A symbolic dataset was synthetically generated by sampling realistic physical ranges: proppant density [Formula: see text], fluid viscosity [Formula: see text], and particle diameter [Formula: see text].
View Article and Find Full Text PDFWater Res
August 2025
Institute of Environmental Sciences, Boğaziçi University, Bebek 34342, Istanbul, Turkey. Electronic address:
This reply addresses the comments by Deng et al. (2025), who raised concerns about the application of Prandtl's mixing length theory in estimating microplastic settling velocity and the formulation of mass-balance equations for microplastic transport amongst the river compartments. We clarify the relevant points from the original article to prevent potential misunderstandings by readers.
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