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Film thickness prediction in halftone screen-printing

机译:半色调丝网印刷中的膜厚预测

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摘要

The paper presents a numerical model of image transfer in screen-printing that is supported by experimental data. The model focuses on a roller squeegee system. It combines thin film hydrodynamic behaviour with roller squeegee deformation and flow through a porous screen. The work within this investigation has, for the first tune, enabled an estimate of deposit thickness at different halftone coverage. For low coverage, ink transfer is governed by hydrodynamic behaviour in the nip contact, and deposited film thickness is represented by an ink spread model. For larger open areas, dependent on squeegee load, the film is removed from the top of the screen and therefore the deposit is likely to be controlled by the screen thickness. The work confirms that a roller squeegee system leads to higher nip pumping capacity in comparison with a sliding squeegee of nominally the same shape. The roller system is therefore appropriate when heavy ink deposits are required. The velocity gradients through the film when ink flows through the screen are reduced as the open area increases. The consequent reduction in shear rate leads to a recovery in viscosity within the nip contact.
机译:本文提出了丝网印刷中图像转移的数值模型,并得到了实验数据的支持。该模型着重于滚筒刮刀系统。它结合了薄膜的流体动力学特性和辊式刮刀的变形,并流经多孔筛网。这项研究中的工作首先可以估算出不同半色调覆盖率下的沉积厚度。对于低覆盖率,油墨转移受压区接触中的流体动力学行为控制,并且沉积的膜厚由油墨扩散模型表示。对于较大的开放区域,取决于吸水扒的负荷,薄膜会从筛网顶部移除,因此沉积物很可能由筛网厚度控制。这项工作证实,与标称相同形状的滑动刮板相比,辊式刮板系统可带来更高的压区泵送能力。因此,当需要大量墨水沉积时,滚筒系统是合适的。随着开口面积的增加,当墨水流过丝网时穿过膜的速度梯度会减小。因此剪切速率的降低导致辊隙接触内的粘度恢复。

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