Dye Diffusion Digital Imaging

John E. LaFleche, R. Benson, Ken Stack, S. Burns
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Abstract

During the dye diffusion thermal printing process a dye-carrying ribbon is brought into contact with a receiver and these two surfaces are compressed between a printhead bead and elastomeric drum, creating the thermal printer nip. Within this highly pressurized contact region both heat and mass transfer takes place. In order to better understand the printing process we have created a finite difference model that simultaneously solves the heat and dye diffusion equation. Using experimental head temperature data we will describe a method for determining a surface boundary condition that can be used in the simulation. This boundary condition will allow us to incorporate different pulse modulation heating schemes in order to predict temperature variations and dye penetration patterns. In the discretization of the diffusion equation we will account for concentration dependence of the diffusivities that is common in many polymer systems. This consideration leads to a nonlinear governing equation for the dye diffusion process.
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染料扩散数字成像
在染料扩散热敏印刷过程中,携带染料的色带与接收器接触,这两个表面在打印头头和弹性体鼓之间被压缩,形成热敏打印机夹头。在这个高压接触区域内,传热传质同时发生。为了更好地理解印刷过程,我们创建了一个有限差分模型,同时解决了热量和染料扩散方程。利用实验水头温度数据,我们将描述一种确定可用于模拟的表面边界条件的方法。这个边界条件将允许我们结合不同的脉冲调制加热方案,以预测温度变化和染料渗透模式。在扩散方程的离散化中,我们将考虑在许多聚合物体系中常见的扩散系数的浓度依赖性。这种考虑导致了染料扩散过程的非线性控制方程。
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