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    • 8. 发明授权
    • Measurement field for determining the smearing limit during printing
    • 用于确定打印期间涂抹极限的测量区域
    • US08037816B2
    • 2011-10-18
    • US12147549
    • 2008-06-27
    • Martin GutfleischAxel Hauck
    • Martin GutfleischAxel Hauck
    • B41F7/24B41F25/00
    • B41F33/0054Y10S101/45Y10S101/46
    • A measurement field allows determining the smearing limit during printing, in particular during lithographic wet offset printing. The measurement field is arranged on a printing form, in particular a printing plate, which has printing, ink-carrying regions and nonprinting, dampening solution-carrying regions on its surface. A dampening solution-carrying property in the region of the measurement field is reduced by a nanoscopic coating (e.g., with amphiphilic molecules) or an unscreened, microscopic coating (e.g., a polymer coating) in comparison with the dampening solution-carrying property in the nonprinting regions of the surface of the printing form. The nanoscopic coating or the microscopic coating advantageously leads to a shifting of the smearing limit, that is to say to a displacement of the starting point of scumming, by the dampening solution requirement which is increased for scum-free printing within the region of the measurement field. Such a measurement field is thus advantageously used for the closed-loop control of a dampening solution supply.
    • 测量领域允许在印刷期间确定涂抹极限,特别是在平版印刷湿胶版印刷期间。 测量区域布置在其表面上具有印刷,墨水携带区域和非印刷,润湿溶液携带区域的印刷形式,特别是印刷版上。 与测量领域中的润湿溶液携带性​​相比,通过纳米镜涂层(例如,具有两亲分子)或未屏蔽的微观涂层(例如,聚合物涂层)来减少测量区域中的润湿溶液携带性​​能 印刷表面的非印刷区域。 纳米尺度涂层或微观涂层有利地导致涂抹极限的移动,即浮渣起始位置的移动,通过在测量区域内无浮渣印刷而增加的阻尼溶液要求 领域。 因此,这样的测量领域有利地用于阻尼溶液供应的闭环控制。
    • 9. 发明申请
    • Measurement Field for Determining the Smearing Limit During Printing
    • 用于确定打印期间涂抹限度的测量范围
    • US20090002430A1
    • 2009-01-01
    • US12147549
    • 2008-06-27
    • Martin GutfleischAxel Hauck
    • Martin GutfleischAxel Hauck
    • B41J29/393
    • B41F33/0054Y10S101/45Y10S101/46
    • A measurement field allows determining the smearing limit during printing, in particular during lithographic wet offset printing. The measurement field is arranged on a printing form, in particular a printing plate, which has printing, ink-carrying regions and nonprinting, dampening solution-carrying regions on its surface. A dampening solution-carrying property in the region of the measurement field is reduced by a nanoscopic coating (e.g., with amphiphilic molecules) or an unscreened, microscopic coating (e.g., a polymer coating) in comparison with the dampening solution-carrying property in the nonprinting regions of the surface of the printing form. The nanoscopic coating or the microscopic coating advantageously leads to a shifting of the smearing limit, that is to say to a displacement of the starting point of scumming, by the dampening solution requirement which is increased for scum-free printing within the region of the measurement field. Such a measurement field is thus advantageously used for the closed-loop control of a dampening solution supply.
    • 测量领域允许在印刷期间确定涂抹极限,特别是在平版印刷湿胶版印刷期间。 测量区域布置在其表面上具有印刷,墨水携带区域和非印刷,润湿溶液携带区域的印刷形式,特别是印刷版上。 与测量领域中的润湿溶液携带性​​相比,通过纳米镜涂层(例如,具有两亲性分子)或未屏蔽的微观涂层(例如,聚合物涂层)来减少测量场区域中的润湿溶液携带性​​能 印刷表面的非印刷区域。 纳米尺度涂层或微观涂层有利地导致涂抹极限的移动,即浮渣起始位置的移动,通过在测量区域内无浮渣印刷而增加的阻尼溶液要求 领域。 因此,这样的测量领域有利地用于阻尼溶液供应的闭环控制。