首页> 外文会议>ASME international conference on nanochannels, microchannels and minichannels >INVESTIGATION OF IN-AIR DROPLET GENERATION IN CONFINED PDMS MICROCHANNELS OPERATING IN THE JETTING REGIME
【24h】

INVESTIGATION OF IN-AIR DROPLET GENERATION IN CONFINED PDMS MICROCHANNELS OPERATING IN THE JETTING REGIME

机译:喷胶系统中工作的局限PDMS微通道中的空中液滴产生的调查

获取原文

摘要

Liquid-in-air generation of monodisperse, microscale droplets is an alternative to conventional liquid-in-liquid methods. Previous work has validated the use of a highly inertial gaseous continuous phase in the production of monodisperse droplets in the dripping regime using planar, flow-focusing, PDMS microchannels. The jetting flow regime, characteristic of small droplet size and high generation rates, is studied here in novel microfluidic geometries. The region associated with the jetting regime is characterized using the liquid Weber number (We_l) and the gas Reynolds number (Re_g). We explore the effects of microchannel confinement on the development and subsequent breakup of the liquid jet as well as the physical interactions between the jet and continuous gaseous flow. Droplet breakup in the jetting regime is also studied numerically and the influence of different geometrical parameters is investigated. Numerical simulations of the jetting regime include axisymmetric cases where the jet diameter and length are studied. This work represents a vital investigation into the physics of droplet breakup in the jetting regime subject to a confined gaseous co-flow. By understanding the effects that different flow and geometry conditions have on the generation of droplets, the use of this system can be optimized for specific high-demand applications in the aerospace, material, and biological industries.
机译:空气中液体生成的单分散微滴是常规液体方法的替代方法。先前的工作已经验证了使用平面,流动聚焦,PDMS微通道以滴落方式在单分散液滴生产中使用高惯性气相连续相的方法。在新颖的微流体几何形状中研究了喷射流态,其具有小液滴尺寸和高生成速率的特征。使用液体韦伯数(We_1)和气体雷诺数(Re_g)来表征与喷射方式相关的区域。我们探讨了微通道限制对液体射流的发展和随后破裂以及射流与连续气流之间的物理相互作用的影响。数值研究了喷射过程中的液滴破裂,并研究了不同几何参数的影响。射流状态的数值模拟包括轴对称情况,其中研究了射流的直径和长度。这项工作是对受限气态共流条件下的喷射过程中液滴破裂的物理过程的一项重要研究。通过了解不同的流动和几何条件对液滴产生的影响,可以针对航空航天,材料和生物工业中的特定高要求应用优化该系统的使用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号