Gravure printing with a shear-rate-dependent ink

Flow Pub Date : 2024-01-17 DOI:10.1017/flo.2023.37
Pauline Rothmann-Brumm, P. Brockmann, I. Roisman, J. Hussong, E. Dörsam, H. Sauer
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Abstract

Abstract Gravure printing is a type of printing method that uses metal cylinders with engraved cells that hold ink. The ink is transferred directly to the paper or other material by pressing it against the cylinder. The flow associated with gravure printing includes a flow in a liquid bridge formed in the contact region of the cylinders and a thin-film coating flow of the ink. The flow is governed by viscous and capillary forces. In many cases, the flow is unstable, which leads to the formation of instability patterns on the printed surfaces. The analysis of these instabilities is a very challenging problem, especially since industrial inks are usually rheologically complex. In this experimental and theoretical study, the flow of inks on a rotating cylinder is analysed, accounting for the shear-rate-dependent liquid viscosity. A theoretical solution for the film flow allows us to predict the width of the liquid bridge between two cylinders. Moreover, it is shown that the measured characteristic size of the printed pattern is of the same order as the predicted liquid bridge width. We observe a nearly linear dependence of pattern size and liquid bridge width.
使用取决于剪切速率的油墨进行凹版印刷
摘要 凹版印刷是一种使用金属滚筒的印刷方法,滚筒上刻有容纳油墨的单元。通过将纸张或其他材料压在滚筒上,将油墨直接转移到纸张或其他材料上。与凹版印刷相关的流动包括在滚筒接触区域形成的液桥流动和油墨的薄膜涂层流动。流动受粘滞力和毛细力的控制。在许多情况下,流动是不稳定的,这会导致在印刷表面形成不稳定图案。对这些不稳定性的分析是一个非常具有挑战性的问题,尤其是因为工业油墨通常流变复杂。在这项实验和理论研究中,我们分析了油墨在旋转圆筒上的流动,并考虑了与剪切速率相关的液体粘度。通过对薄膜流动的理论求解,我们可以预测两个圆筒之间液体桥的宽度。此外,测量结果表明,印刷图案的特征尺寸与预测的液桥宽度相同。我们观察到图案尺寸与液桥宽度几乎呈线性关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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