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Detailed studies of drying and crack formation in aggregated colloidal suspensions.

机译:聚集胶体悬浮液中干燥和裂纹形成的详细研究。

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In this thesis we present evidence that particle interaction forces play an important role in the cumulative drying behavior of suspensions of aggregated colloidal particles. In particular, they control the shape and deformation behavior during drying of these suspensions. We identify a single dimensionless group that can be used to predict drying behavior. We use a two-phase fluid model with the compressive yield stress constitutive equation to describe consolidation behavior in these systems. In the falling rate period we propose a simple diffusion mechanism that describes drying rate behavior during this period of drying. We describe the drying front that forms when the gas-liquid interface moves inside the porous bed by a single position of constant concentration. By combining the two-phase fluid model with the compressive yield stress constitutive equation and the diffusion model of drying in the falling rate period we characterize the development and evolution of stress in these aggregated systems as a function of moisture content. The volume fraction at which cracks begin has been identified as coinciding with the changeover from consolidation to de-saturation in these systems. Additionally we show that by adjusting the initial volume fraction of our suspensions, we can significantly alter their elastic properties so that the corresponding strain that these suspensions experience during drying can be significantly reduced.
机译:在本文中,我们提供了证据,表明颗粒相互作用力在聚集胶体颗粒悬浮液的累积干燥行为中起着重要作用。特别是,它们控制这些悬浮液干燥期间的形状和变形行为。我们确定了一个单一的无量纲组 Q ,可用于预测干燥行为。我们使用具有压缩屈服应力本构方程的两相流体模型来描述这些系统中的固结行为。在下降速率期间,我们提出了一个简单的扩散机制,该机制描述了此干燥期间的干燥速率行为。我们描述了当气液界面在多孔床内以恒定浓度的单个位置移动时形成的干燥前沿。通过将两相流体模型与压缩屈服应力本构方程和下降速率时期的干燥扩散模型相结合,我们表征了这些聚集系统中应力的发展和演变与水分含量的关系。在这些系统中,裂纹开始的体积分数与从固结到去饱和的转变相吻合。另外,我们表明,通过调节悬浮液的初始体积分数,我们可以显着改变其弹性性能,从而可以大大降低这些悬浮液在干燥过程中所经历的相应应变。

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