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Optimized design of obstacle sequences for microfluidic mixing in an inertial regime
- Source :
- Lab on a Chip. 21:3910-3923
- Publication Year :
- 2021
- Publisher :
- Royal Society of Chemistry (RSC), 2021.
-
Abstract
- Mixing is a basic but challenging step to achieve in high throughput microfluidic applications such as organic synthesis or production of particles. A common approach to improve micromixer performance is to devise a single component that enhances mixing through optimal convection, and then sequence multiple such units back-to-back to enhance overall mixing at the end of the sequence. However, the mixing units are often optimized only for the initial non-mixed fluid composition, which is no longer the input condition for each subsequent unit. Thus, there is no guarantee that simply repeating a single mixing unit will achieve optimally mixed fluid flow at the end of the sequence. In this work, we analyzed sequences of 20 cylindrical obstacles, or pillars, to optimize the mixing in the inertial regime (where mixing is more difficult due to higher Peclet number) by managing their interdependent convection operations on the composition of the fluid. Exploiting a software for microfluidic design optimization called FlowSculpt, we predicted and optimized the interfacial stretching of two co-flowing fluids, neglecting diffusive effects. We were able to quickly design three different optimal pillar sequences through a space of 3220 possible combinations of pillars. As proof of concept, we tested the new passive mixer designs using confocal microscopy and full 3D CFD simulations for high Peclet numbers (Pe ≈ O(105–6)), observing fluid flow shape and mixing index at several cross-sections, reaching mixing efficiencies around 80%. Furthermore, we investigated the effect of the inter-pillar spacing on the most optimal design, quantifying the tradeoff between mixing performance and hydraulic resistance. These micromixer designs and the framework for the design in inertial regimes can be used for various applications, such as lipid nanoparticle fabrication which has been of great importance in vaccine scale up during the pandemic.
- Subjects :
- Optimal design
Convection
Materials science
Microfluidic mixing
Microfluidics
Biomedical Engineering
Organic synthesis
Micromixer
High-throughput
Bioengineering
Péclet number
Computational fluid dynamics
Biochemistry
Inertial regimes
Mixing units
symbols.namesake
Mixing
equipment design
Mixers (machinery)
Micro mixers
Fluid dynamics
Mixing (physics)
software
nanoparticle
General Chemistry
Mechanics
Microfluidic Analytical Techniques
Flow of fluids
Throughput
Fluid-flow
Optimized designs
Microfluidic applications
Throughput, Fluid-flow
Mixed fluids
Organic synthesis, Mixing, nanoparticle, equipment design
microfluidic analysis
microfluidics
software, Equipment Design
Nanoparticles
Software
SCALE-UP
symbols
Subjects
Details
- ISSN :
- 14730189 and 14730197
- Volume :
- 21
- Database :
- OpenAIRE
- Journal :
- Lab on a Chip
- Accession number :
- edsair.doi.dedup.....33ef99dbf2c17b10cc2fef73ef6822a1
- Full Text :
- https://doi.org/10.1039/d1lc00483b