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PMID: 34051999 Published · ppublish English Journal Article

PolyJet printed high aspect ratio three-dimensional bifurcating microfluidic flow distributor and its application in solid-phase extraction.

Analytica chimica acta ·Vol. 1168 ·2021-07-11 ·页码 338624

Gupta V, Paull B

Abstract

Microfluidic distributors that can uniformly distribute fluid from a single channel to multiple channels and into, or across, 3D spaces and vice versa has always represented a challenge. Recently, significant interest has been observed in 3D printing three-dimensional flow distributors. However, they either lack their use at low flow rates or in high aspect ratio environments, which are usually encountered in various applications, such as generating organs-on-a-chip, chromatographic columns, solid-phase extractors, etc. Hence, herein, a three-dimensional bifurcating microfluidic distributor that can be used in both low flow rate and high aspect ratio environments has been designed and developed using PolyJet printing. A 1:4 aspect ratio distributor has been developed with 64 exit channels (array of 16 X 4), however, it can be easily customised to modulate both the aspect ratio and the number of exit channels (in the order of 2). Computational fluid dynamic (CFD) simulation of 0.2 and 0.1 mL min-1 flow through the distributor recorded a maldistribution factor of only 2.29% and 1.72%, respectively. The distributor has resulted in low-dispersion divergence and convergence of flow to and from 64 parallel channels while operating at flow rates ranging from 0.25 mL min-1 to 2 mL min-1. It has been further used to develop a high-performance online solid-phase extractor. The extractor was designed with the three-dimensional bifurcating distributor based inlet and outlet and a packed bed of 15 × 20 × 8 mm (length × breadth × height), which resulted in extraction efficiency of 88.8% ± 0.3. In comparison, the extraction efficiency of 81.1% ± 1.1 and 70.4% ± 0.8 was obtained with its two-dimensional distributor and single-channel inlet and outlet based counterparts, respectively.

Keywords
3D printed Bifurcating distributor Flow distributor Microfluidic distributor Multi-lumen column Solid-phase extractor
作者与单位
共 2 位作者,点击展开单位 / ORCID
Gupta Vipul
Australian Centre for Research on Separation Sciences (ACROSS) and ARC Centre of Excellence for Electromaterials Science (ACES), School of Natural Sciences, University of Tasmania, Sandy Bay, Hobart, 7001, Tasmania, Australia. Electronic address: [email protected].
Paull Brett
Australian Centre for Research on Separation Sciences (ACROSS) and ARC Centre of Excellence for Electromaterials Science (ACES), School of Natural Sciences, University of Tasmania, Sandy Bay, Hobart, 7001, Tasmania, Australia.
Article Info
Journal
Analytica chimica acta
Abbr.
Anal Chim Acta
ISSN
1873-4324
Corresponding email
Published
2021-07-11
电子出版
2021-00-07
页码
338624
Language
English
Country/Region
Netherlands
NLM ID
0370534
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