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Effects of Blanket Roller Deformation on Printing Qualities in Gravure-Offset Printing Method

机译:凹版胶印法中毛毯辊变形对印刷质量的影响

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摘要

In this paper, the deformation of the blanket roller when using the gravure-offset printing method for printed electronics, as well as the effect of this deformation on the quality of the printing, is examined. The mechanical properties of the blanket roller, which is made of silicone rubber compounds, are measured using a rubber tester. Mooney-Rivlin material parameters are obtained for the nonlinear elastic properties by conducting uniaxial and biaxial tests. The commercial finite element method (FEM), which is a numerical tool for solving partial differential equations (PDEs), is used to analyze the deformation of the blanket roller. In the FEM model, we consider the large-scale deformation of rubber showing nonlinear elastic behavior, and introduce a contact condition between flexible and rigid bodies. The parametric study shows that in the gravure-offset printing process, the distortions of the printed pattern, as well as changes in gain and changes in the position of the patterns caused by nip deformation of the rubber blanket, is significantly affected by printing loading and friction. Moreover, non-uniform friction condition due to partly patterned zone also makes a local pattern distortion.
机译:在本文中,研究了使用凹版胶印印刷方法印刷电子设备时橡皮辊的变形,以及变形对印刷质量的影响。由硅橡胶混合物制成的橡皮滚筒的机械性能使用橡胶测试仪进行测量。通过进行单轴和双轴测试获得Mooney-Rivlin材料参数的非线性弹性特性。商业有限元方法(FEM)是用于求解偏微分方程(PDE)的数值工具,用于分析橡皮布辊的变形。在有限元模型中,我们考虑了显示非线性弹性行为的橡胶的大规模变形,并引入了弹性体和刚体之间的接触条件。参数研究表明,在凹版胶印过程中,印刷图案的变形以及由橡皮布的辊隙变形引起的图案增益和图案位置的变化都会受到印刷负荷和印刷量的显着影响。摩擦。此外,由于部分图案化区域引起的不均匀摩擦条件也使局部图案变形。

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  • 来源
    《Japanese journal of applied physics》 |2010年第5issue2期|P.05EC04.1-05EC04.5|共5页
  • 作者单位

    Nano-Mechanical Systems Research Division, Korea Institute of Machinery and Materials, 171 Jang-dong, Yuseong-gu, Daejeon 305-343, Korea;

    rnNano-Mechanical Systems Research Division, Korea Institute of Machinery and Materials, 171 Jang-dong, Yuseong-gu, Daejeon 305-343, Korea;

    rnDivision of Mechanical Engineering, Kangwon National University, 1 Kangwondaehakgil, Chuncheon, Gangwon 200-701, Korea;

    rnNano-Mechanical Systems Research Division, Korea Institute of Machinery and Materials, 171 Jang-dong, Yuseong-gu, Daejeon 305-343, Korea;

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