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Microscopic simulation of pigment coating consolidation

机译:颜料涂层固结的微观模拟

摘要

The control of coating layer properties is becoming increasingly important as a result of an emerging demand for novel coated paper-based products and an increasing popularity of new coating application methods. The governing mechanisms of microstructure formation dynamics during consolidation and drying are nevertheless, still poorly understood. Some of the difficulties encountered by experimental methods can be overcome by the utilisation of numerical modelling and simulation-based studies of the consolidation process.The objective of this study was to improve the fundamental understanding of pigment coating consolidation and structure formation mechanisms taking place on the microscopic level. Furthermore, it is aimed to relate the impact of process and suspension properties to the microstructure of the coating layer.A mathematical model based on a modified Stokesian dynamics particle simulation technique was developed and applied in several studies of consolidation-related phenomena. The model includes particle-particle and particle-boundary hydrodynamics, colloidal interactions, Born repulsion, and a steric repulsion model. The Brownian motion and a free surface model were incorporated to enable the specific investigation of consolidation and drying.Filter cake stability was simulated in various particle systems, and subjected to a range of base substrate absorption rates and system temperatures. The stability of the filter cake was primarily affected by the absorption rate and size of particles. Temperature was also shown to have an influence. The consolidation of polydisperse systems, with varying wet coating thicknesses, was studied using imposed pilot trial and model-based drying conditions. The results show that drying methods have a clear influence on the microstructure development, on small particle distributions in the coating layer and also on the mobility of particles during consolidation. It is concluded that colloidal properties can significantly impact coating layer shrinkage as well as the internal solids concentration profile. Visualisations of particle system development in time and comparison of systems at different conditions are useful in illustrating coating layer structure formation mechanisms.The results aid in understanding the underlying mechanisms of pigment coating layer consolidation. Guidance is given regarding the relationship between coating process conditions and internal coating slurry properties and their effects on the microstructure of the coating.
机译:由于对新颖的涂布纸基产品的需求不断增加以及新的涂布方法的日益普及,涂层性能的控制变得越来越重要。尽管如此,固结和干燥过程中微观结构形成动力学的控制机理仍然知之甚少。实验方法所遇到的一些困难可以通过利用数值模型和基于模拟的固结过程研究来克服。本研究的目的是增进对颜料涂层固结和结构形成机理的基本认识。微观层面。此外,其目的在于将工艺和悬浮性能的影响与涂层的微观结构联系起来。建立了基于改进的斯托克斯动力学粒子模拟技术的数学模型,并将其应用于固结相关现象的若干研究中。该模型包括粒子-粒子和粒子边界的流体动力学,胶体相互作用,Born斥力和空间斥力模型。结合了布朗运动和自由表面模型来进行固结和干燥的具体研究。在各种颗粒系统中模拟滤饼的稳定性,并受基础基材吸收率和系统温度的影响。滤饼的稳定性主要受颗粒的吸收速率和尺寸影响。温度也显示出影响。使用强制试验和基于模型的干燥条件研究了具有不同湿涂层厚度的多分散体系的固结。结果表明,干燥方法对微观结构的发展,涂层中小颗粒的分布以及固结过程中颗粒的迁移率都有明显的影响。结论是,胶体性质可以显着影响涂层收缩率以及内部固体浓度分布。及时观察颗粒系统发展以及在不同条件下对系统进行比较有助于说明涂层结构的形成机理。结果有助于理解颜料涂层固结的潜在机理。给出了有关涂覆工艺条件与内部涂料浆液性能之间的关系及其对涂层微观结构的影响的指南。

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  • 作者

    Sand Anders;

  • 作者单位
  • 年度 2010
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  • 原文格式 PDF
  • 正文语种 en
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