Mesoscopic flow simulation to understand the percolation through fine-ground electronic waste particle bed

IF 4.6 2区 工程技术 Q2 ENGINEERING, CHEMICAL Powder Technology Pub Date : 2025-03-31 Epub Date: 2025-01-31 DOI:10.1016/j.powtec.2025.120703
Zachary Diermyer , Yidong Xia , Ahmed Hamed , Jordan Klinger , Vicki Thompson , Zhen Li , Jiaoyan Li
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Abstract

Mechanical size reduction is a critical pretreatment for hydrometallurgical recovery of valuable metals in electronic waste. The particle size resulting from milling ranges from a few micrometers to a few millimeters, presenting challenges of achieving sufficient leaching percolation in portions occupied by fine particles. This work investigates the hydrodynamics of percolation through micrometer-sized fine particle beds by using many-body dissipative particle dynamics flow simulations. The results show that higher effective pore size resulting from high aspect-ratio particle packing contributes to higher permeability than spherical particle packing. Increasing surface wettability enhances maximum saturation rates but reduces permeability. Moreover, increasing tortuosity negatively impacts permeability and the degree of reduction in permeability caused by increased surface wettability decreases with increasing tortuosity. These findings imply possible complex relationships between tortuosity, pore size, and surface wettability that collectively impact percolation in loosely packed fine particle beds and can be used to guide improvement in pretreatment.

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细观流动模拟,了解细磨电子垃圾颗粒床的渗流
机械减粒度是湿法冶金回收电子废弃物中有价金属的关键预处理技术。磨矿产生的颗粒大小从几微米到几毫米不等,这给在细颗粒占据的部分实现充分的浸出渗透带来了挑战。本文采用多体耗散粒子动力学流动模拟的方法研究了微米级细颗粒床的流体动力学。结果表明,与球形颗粒充填相比,高纵横比颗粒充填导致的有效孔径增大有助于提高渗透率。增加表面润湿性提高了最大饱和速率,但降低了渗透率。扭曲度的增加对渗透率有负面影响,表面润湿性增加导致渗透率降低的程度随扭曲度的增加而减小。这些发现暗示了扭曲度、孔隙大小和表面润湿性之间可能存在的复杂关系,它们共同影响松散堆积的细颗粒床的渗透,并可用于指导预处理的改进。
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来源期刊
Powder Technology
Powder Technology 工程技术-工程:化工
CiteScore
9.90
自引率
15.40%
发文量
1047
审稿时长
46 days
期刊介绍: Powder Technology is an International Journal on the Science and Technology of Wet and Dry Particulate Systems. Powder Technology publishes papers on all aspects of the formation of particles and their characterisation and on the study of systems containing particulate solids. No limitation is imposed on the size of the particles, which may range from nanometre scale, as in pigments or aerosols, to that of mined or quarried materials. The following list of topics is not intended to be comprehensive, but rather to indicate typical subjects which fall within the scope of the journal's interests: Formation and synthesis of particles by precipitation and other methods. Modification of particles by agglomeration, coating, comminution and attrition. Characterisation of the size, shape, surface area, pore structure and strength of particles and agglomerates (including the origins and effects of inter particle forces). Packing, failure, flow and permeability of assemblies of particles. Particle-particle interactions and suspension rheology. Handling and processing operations such as slurry flow, fluidization, pneumatic conveying. Interactions between particles and their environment, including delivery of particulate products to the body. Applications of particle technology in production of pharmaceuticals, chemicals, foods, pigments, structural, and functional materials and in environmental and energy related matters. For materials-oriented contributions we are looking for articles revealing the effect of particle/powder characteristics (size, morphology and composition, in that order) on material performance or functionality and, ideally, comparison to any industrial standard.
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