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Determine velocity of fluid in curved micro channels fabricated with 3d printing (SLA)

Research output: Contribution to journalArticlepeer-review

Abstract

The study investigated fluid dynamics in curved microchannels, exploring 3D printing parameters, channel geometry, and fluid properties, crucial for applications in medicine and energy. It highlighted the importance of microfluidics in handling small samples and enabling rapid analysis, stressing the need for precise measurement techniques to validate fluid velocity. Using 3D printing for microchannel design illustrated their utility, with microscopy aiding flow behavior comprehension. The research aimed to validate fluid velocity, covering technology analysis, microdevice design, fabrication, and measurement methodologies. It successfully fabricated microdevices confirming fluid movement via capillarity, revealing the relationship between channel radius and flow velocity. Distinct flow velocity patterns were observed, vital for design optimization. The study affirmed capillary flow as a spontaneous phenomenon, with fluid velocity variations along curved microchannels consistent with mass conservation principles in incompressible flows.

Translated title of the contributionDeterminación de la velocidad de fluido en micro canales curvos fabricados con impresión 3D (SLA)
Original languageEnglish
Pages (from-to)103-111
Number of pages9
JournalDYNA (Colombia)
Volume91
Issue number232
DOIs
StatePublished - 1 Apr 2024

Bibliographical note

Publisher Copyright:
© 2024, Universidad Nacional de Colombia. All rights reserved.

Keywords

  • 3D printing
  • applications
  • curved
  • design
  • fluid
  • microchannels
  • microfluidics
  • microscopy
  • SLA
  • validation
  • velocity

CACES Knowledge Areas

  • 8315A Biomedicine

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