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首页> 外文期刊>Review of Scientific Instruments >Direct and precise measurement of displacement and velocity of flexible web in roll-to-roll manufacturing systems
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Direct and precise measurement of displacement and velocity of flexible web in roll-to-roll manufacturing systems

机译:在卷对卷制造系统中直接和精确地测量柔性幅材的位移和速度

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Interest in the production of printed electronics using a roll-to-roll system has gradually increased due to its low mass-production costs and compatibility with flexible substrate. To improve the accuracy of roll-to-roll manufacturing systems, the movement of the web needs to be measured precisely in advance. In this paper, a novel measurement method is developed to measure the displacement and velocity of the web precisely and directly. The proposed algorithm is based on the traditional single field encoder principle, and the scale grating has been replaced with a printed grating on the web. Because a printed grating cannot be as accurate as a scale grating in a traditional encoder, there will inevitably be variations in pitch and line-width, and the motion of the web should be measured even though there are variations in pitch and line-width in the printed grating patterns. For this reason, the developed algorithm includes a precise method of estimating the variations in pitch. In addtion, a method of correcting the Lissajous curve is presented for precision phase interpolation to improve measurement accuracy by correcting Lissajous circle to unit circle. The performance of the developed method is evaluated by simulation and experiment. In the experiment, the displacement error was less than 2.5 μm and the velocity error of 1σ was about 0.25%, while the grating scale moved 30 mm.
机译:由于其批量生产成本低以及与柔性基板的兼容性,使用卷对卷系统生产印刷电子产品的兴趣逐渐增加。为了提高卷对卷制造系统的精度,需要预先精确测量卷筒纸的运动。本文提出了一种新颖的测量方法,可以精确,直接地测量纸幅的位移和速度。所提出的算法基于传统的单场编码器原理,并且光栅已被网上的印刷光栅代替。由于印刷光栅不能像传统编码器中的光栅尺那样精确,因此间距和线宽不可避免地会发生变化,即使卷材的间距和线宽发生变化,也应测量卷筒纸的运动。印刷的光栅图案。因此,开发的算法包括一种精确的估算音高变化的方法。此外,提出了一种校正李萨如曲线的方法,用于精确的相位插值,以通过将李萨如圆校正为单位圆来提高测量精度。通过仿真和实验评估了所开发方法的性能。在实验中,当光栅尺移动30 mm时,位移误差小于2.5μm,速度误差为1σ约为0.25%。

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