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The Performance and Fabrication of 3D Variable Cross-Section Channel for Passive Microfluidic Control. | LitMetric

AI Article Synopsis

  • * Traditional methods for analyzing flow in these systems are easier in 2D than in 3D, but advancements in 3D printing now allow for the manufacturing of complex, irregular channel designs that can lead to improved fluid control.
  • * The study demonstrates that a 3D printed periodic tetrahedron channel performs comparably to conventional passive fluid control methods, suggesting significant potential for enhanced performance in fluid control applications.

Article Abstract

Passive fluid control has mostly been used for valves, pumps, and mixers in microfluidic systems. The basic principle is to generate localized losses in special channel structures, such as branches, grooves, or spirals. The flow field in two-dimensional space can be easily calculated using the typical Stokes formula, but it is challenging in three-dimensional space. Moreover, the flow field with periodic variable cross-sections channeled of polyhedral units has been neglected in this research field due to previous limitations in manufacturing technology. With the continuous progress of 3D printing technology, the field of microfluidic devices ushered in a new era of manufacturing three-dimensional irregular channels. In this study, we present finite analysis results for a periodic nodular-like channel. The experiments involve variations in the Reynold number (Re), periodic frequency, and comparative analyses with conventional structures. The findings indicate that this variable 3D cross-section structure can readily achieve performance comparable to other passive fluid control methods in valve applications. A 3D model of the periodic tetrahedron channel was fabricated using 3D printing to validate these conclusions. This research has the potential to significantly enhance the performance of passive fluid control units that have long been constrained by manufacturing dimensions.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11356130PMC
http://dx.doi.org/10.3390/mi15081038DOI Listing

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