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Maximize static dissipator neutralization efficiency

机译:最大化静电消散器中和效率

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Plastic packaging materials are produced on roll-to-roll coating, printing and converting machines that convey insulating, polymer webs at speeds often exceeding 3 m/s. Static charges on these web cause a number of problems including sparks that ignite fires, that shock people, and that cause logic errors in the production machine control systems. Static charges attract airborne contaminates and, in sheeting and labeling operations, cause sheets and labels to stick and block. While many static dissipators are commercially available for controlling static on webs and sheets, their performance is highly variable. Here, the performance of static dissipators is analyzed to find that three key factors determine neutralization efficiency; the ion number density generated by the static dissipator (dissipator design), the length of the web exposed to ions (installation), and the web speed (process). A key result is that the static dissipator neutralization efficiency varies with the electric Reynolds number, the ratio of the dissipator time constant determined by the number of ions generated by the dissipator to the time that the web is exposed to ions from the dissipator. A second result is that the spacing between the static dissipator and the charged web is not a key factor. Rather, the web length exposed to ions from the dissipator is the key factor. Finally, a method is presented to measure the number of ions generated by a static dissipator to determine the dissipator time constant. Results from a commercially available static dissipator are given.
机译:塑料包装材料是在卷对卷的涂布,印刷和转换机器上生产的,这些机器可以以超过3 m / s的速度输送绝缘的聚合物网。这些网上的静电荷会引起许多问题,其中包括引起火灾的火花,使人震惊的问题,以及在生产机器控制系统中引起逻辑错误的问题。静电荷会吸引空气中的污染物,并且在薄片和标签操作中会导致薄片和标签粘附和阻塞。尽管有许多静电消散器可用于控制卷筒纸和片材上的静电,但它们的性能却变化很大。在这里,对静电消散器的性能进行了分析,发现三个关键因素决定了中和效率。静电消散器产生的离子数密度(消散器设计),暴露于离子的纤维网长度(安装)和纤维网速度(过程)。一个关键的结果是静电消散器的中和效率随雷诺数而变化,该消散器时间常数的比率由消散器产生的离子数与纤维网暴露于消散器中的离子的时间所决定。第二个结果是,静电消散器和带电纤网之间的间距不是关键因素。相反,暴露于来自耗散器的离子的纤维网长度是关键因素。最后,提出了一种测量静电消散器产生的离子数以确定消散器时间常数的方法。给出了市售静电消散器的结果。

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