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Modeling and Register Control of the Speed-Up Phase in Roll-to-Roll Printing Systems

机译:卷对卷印刷系统中加速阶段的建模和套准控制

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High precision register controls are indispensable in roll-to-roll (R2R) printing systems for mass manufacturing. In R2R printing systems, each gravure cylinder is driven by an individual motor and guiding rolls distributed between two adjacent gravure cylinders are driven by the tension of their wrapped web. In the speed-up phase, tension fluctuations caused by torque balance of guiding rolls generate register errors in each printing unit. Therefore, it is a challenging issue to design a control method to reduce the register errors. In this paper, a mechanical model of R2R printing systems in the speed-up phase is developed based on the principle of mass conservation and torque balance. A model-based feed-forward proportionderivative controller is designed to reduce the register errors caused by the tension fluctuations. The validity of the proposed method is demonstrated by simulation and experiments carried out on an industrial rotogravure printing press. A comparison with other control methods especially a well-tuned proportion differential control which is widely adopted by printing presses shows that the absolute maximum register error is drastically reduced and the average register error is greatly decreased by the proposed method. The results verify the effectiveness and feasibility of the proposed control method.Note to Practitioners-This paper presents control strategy for the speed-up phase in R2R printing system, particularly for printing systems with electronic line shafts. Few existing systematic research is relevant with the speed-up phase in the R2R printing system. This paper analyses the relationship of the register error and the web tension fluctuations between two adjacent gravure cylinders which are driven by the guiding rolls, then proposes the control strategy based on the identification of the acceleration of guiding rolls. The proposed method can be extended to other similar R2R systems. Simulation and industrial experiments suggest that the control method is feasible and has superior performance compared with the existing methods. In the future research, we will study the adaptive model representing the acceleration of guiding rolls in different R2R web systems.
机译:在批量生产的卷对卷(R2R)打印系统中,高精度套准控制是必不可少的。在R2R印刷系统中,每个凹版滚筒由单独的电机驱动,分布在两个相邻的凹版滚筒之间的导辊由其包裹的卷筒纸的张力驱动。在加速阶段,由导辊的扭矩平衡引起的张力波动会在每个打印单元中产生套准误差。因此,设计一种减少寄存器错误的控制方法是一个具有挑战性的问题。本文基于质量守恒和扭矩平衡的原理,建立了R2R打印系统在加速阶段的力学模型。设计基于模型的前馈比例微分控制器,以减少由张力波动引起的套准误差。通过在工业轮转凹版印刷机上进行的仿真和实验证明了该方法的有效性。与其他控制方法,尤其是印刷机广泛采用的比例微分调节控制方法的比较表明,该方法大大降低了绝对最大套准误差,并且大大降低了平均套准误差。结果验证了所提出的控制方法的有效性和可行性。执业者注意-本文提出了R2R打印系统中加速阶段的控制策略,特别是对于带有电子线轴的打印系统。现有的系统研究很少涉及R2R打印系统中的加速阶段。本文分析了导辊驱动的两个相邻凹版滚筒之间的套准误差与幅材张力波动之间的关系,然后在识别导辊加速度的基础上提出了控制策略。所提出的方法可以扩展到其他类似的R2R系统。仿真和工业实验表明,与现有方法相比,该控制方法可行,性能优越。在未来的研究中,我们将研究自适应模型,该模型表示不同R2R Web系统中导辊的加速度。

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