Predictive models for energy dissipation in mechanochemical ball milling

IF 4.6 2区 工程技术 Q2 ENGINEERING, CHEMICAL Powder Technology Pub Date : 2025-03-15 DOI:10.1016/j.powtec.2025.120919
Santiago Garrido Nuñez , Dingena L. Schott , Johan T. Padding
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Abstract

High-energy ball milling is a versatile method utilized in mechanochemical reactions and material transformations. Understanding and characterizing the relevant mechanical variables is crucial for the optimization and up-scaling of these processes. To achieve this, the present study delves into differentiating the contributions of normal and tangential interactions during high-energy collisions. Using Discrete Element Method (DEM) simulations, we characterize how operational parameters influence these energy dissipation modes, emphasizing the significance of tangential interactions. Our analysis also reveals how different operational parameters such as ball size, fill ratio, and rotational speed affect the mechanical action inside the milling jar giving rise to multiple operating zones where different modes of energy dissipation can thrive. Finally, we present master curves that generalize findings across a wide range of configurations, offering a tool for characterizing and predicting mechanochemical processes beyond the presented cases. These results provide a robust framework for improving mechanochemical reaction efficiency, and equipment design.

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机械化学球磨中能量耗散的预测模型
高能球磨是一种用于机械化学反应和材料转化的通用方法。理解和表征相关的机械变量对于这些过程的优化和扩大规模至关重要。为了实现这一目标,本研究深入探讨了区分高能碰撞中正常相互作用和切向相互作用的贡献。利用离散元法(DEM)模拟,我们描述了操作参数如何影响这些能量耗散模式,强调了切向相互作用的重要性。我们的分析还揭示了不同的操作参数(如球尺寸、填充比和转速)如何影响磨铣罐内的机械作用,从而产生多个操作区域,在这些操作区域中,不同的能量消耗模式可以发挥作用。最后,我们提出了主曲线,概括了各种配置的发现,为描述和预测所述案例之外的机械化学过程提供了一种工具。这些结果为提高机械化学反应效率和设备设计提供了强有力的框架。
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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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