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首页> 外文期刊>Industrial and organizational psychology >Secondary Tail Formation and Breakup in Piezoacoustic Inkjet Printing: Femtoliter Droplets Captured in Flight
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Secondary Tail Formation and Breakup in Piezoacoustic Inkjet Printing: Femtoliter Droplets Captured in Flight

机译:压电喷墨印刷中的二级尾部形成和分手:飞行中捕获的飞机液滴

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摘要

The role of meniscus motion and ink viscosity in the formation of a secondary tail and its breakup are studied experimentally during the picoliter-droplet formation process of a MEMS piezoacoustic inkjet print head using laser-induced 8-ns single-flash stroboscopic imaging with a temporal resolution of 100 ns. It is found that the formation of the secondary tail is driven by meniscus motion and that the secondary tail forms reproducibly between the primary tail and the meniscus in the final microseconds before pinchoff. We demonstrate that the stability of the secondary tail can be controlled through the motion of the meniscus after the primary tail has formed. A 4 times increase in stretching rate results in a 2.2 times increase in the secondary-tail length and a 3 times higher number of femtoliter satellites. Furthermore, as expected for Rayleigh breakup, a 43% increase in ink viscosity is found to increase the secondary-tail length by 50%. Finally, it is found that, during inkjet printing, the secondary tail cascades into tertiary and quaternary tails. We show that the formation of higher-order tails is irreproducible and therefore driven by noise. The formation of thicker secondary and thinner higher-order tails results in a bimodal satellite size distribution, where the secondary satellites with a volume greater than or equal to 4 fL are located closer to the primary-tail droplet, while satellites with a volume less than 4 fL are located closer to the nozzle. The main findings of the present work, that the stability of the secondary tail decreases with a decrease in stretching rate and ink viscosity, can be employed in the inkjet-printing community for waveform design to minimize internal contamination of inkjet printers.
机译:通过使用激光诱导的8-ns单闪光频道成像在MEMS压电喷墨喷墨打印头的Picoliter-Droplet-Flash频道成像期间通过使用带时间的MEMS压电喷墨喷墨打印头的Picoliter-Droplet-Flash Protocopic成像在实验中研究了弯耳运动和墨水粘度的作用。分辨率为100 ns。发现次级尾部的形成由弯月面运动驱动,并且次级尾部形式可重复地在PinChoff之前的最终微秒中的主要尾部和弯月面之间。我们证明可以通过在主尾部形成后通过弯月面的运动来控制二次尾的稳定性。拉伸速率的4倍导致二尾长度增加2.2倍,少量羽毛分子卫星增加了3倍。此外,正如Rayleigh分段所预期的那样,发现油墨粘度增加43%,以使二级尾长度增加50%。最后,发现,在喷墨印刷期间,次级尾部级联进入三级和第四节尾部。我们表明,高阶尾部的形成是不可制备的,因此由噪音驱动。较厚的次级和较薄的高阶尾部的形成导致双峰卫星尺寸分布,其中体积大于或等于4 v的二次卫星位于初级尾液滴,而卫星的体积小于4 FL靠近喷嘴。目前工作的主要发现,即二次尾部的稳定性随着拉伸速率和墨水粘度的降低而降低,可用于喷墨印刷界进行波形设计,以最大限度地减少喷墨打印机的内部污染。

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