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Acoustic Analysis of Viscous Fluid Ejection Using Ultrasonic Atomizer

机译:超声雾化器对粘性流体喷射的声学分析

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摘要

The acoustics of the Additive Manufacturing via Microarray Deposition (AMMD) system based on a ultrasonic atomizer is investigated for printing high viscosity fluids for 3D inkjet manufacturing applications. The ultrasonic atomizer incorporates a piezoelectric transducer, a material reservoir, and a silicon micromachined array of acoustic horn structures as ejection nozzles. When driven at the resonance frequencies of the fluid cavity, the nozzle geometry focuses the acoustic waves resulting in a locally increased pressure gradient at the nozzle apex. Previously, AMMD has demonstrated successful ejection of fluids with viscosity as high as 3000 mN-s/m2, overcoming the viscosity limitations traditionally associated with piezoelectric droplet formation. However, the physics of ejection of such high-viscosity fluids is not well understood. This work focuses on understanding the acoustics of the AMMD system through complimentary simulations and experimental characterization. Specifically, ANSYS finite element software was used to model acoustic wave attenuation due to viscosity inside the material cavity and its implication on the pressure gradient at nozzle apex, which drives the fluid ejection. Additionally, the affect of fluid attenuation on cavity resonance modes, both the frequency and the quality factor, is characterized for fluids of a large variation range in viscosity. Finally, preliminary guidelines for improved design and efficient operation of the AMMD system are formulated based on an insight into a device's acoustic behavior with high viscosity fluids.
机译:研究了基于超声雾化器的微阵列沉积(AMMD)系统增材制造的声学特性,以印刷3D喷墨制造应用中的高粘度流体。超声雾化器结合了压电换能器,材料储存器和声喇叭结构的硅微机械阵列作为喷嘴。当以流体腔的共振频率驱动时,喷嘴的几何形状会聚焦声波,从而导致喷嘴顶点处的压力梯度局部增加。以前,AMMD已证明成功喷射出粘度高达3000 mN-s / m2的流体,克服了传统上与压电液滴形成相关的粘度限制。但是,对这种高粘度流体的喷射物理学尚不十分了解。这项工作的重点是通过互补的模拟和实验表征来了解AMMD系统的声学特性。具体来说,ANSYS有限元软件用于模拟声波衰减,该声波衰减是由于材料腔内部的粘度及其对喷嘴顶点压力梯度的影响而引起的,该喷嘴驱动流体喷射。另外,对于粘度变化范围较大的流体,表征了流体衰减对腔共振模式的影响,包括频率和品质因数。最后,根据对高粘度流体设备的声学特性的了解,制定了改进AMMD系统的设计和有效运行的初步指南。

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  • 来源
  • 会议地点 Austin TX(US);Austin TX(US)
  • 作者单位

    Georgia Institute of Technology 813 Ferst Drive, Atlanta, GA, 30332-0405;

    Georgia Institute of Technology 813 Ferst Drive, Atlanta, GA, 30332-0405;

    Georgia Institute of Technology 813 Ferst Drive, Atlanta, GA, 30332-0405;

    Georgia Institute of Technology 813 Ferst Drive, Atlanta, GA, 30332-0405;

    Georgia Institute of Technology 813 Ferst Drive, Atlanta, GA, 30332-0405;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 产品模型制作;
  • 关键词

  • 入库时间 2022-08-26 14:18:34

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