Experimental and Computational Analysis of the Hydrodynamics of Droplet Generation in a Cylindrical Microfluidic Device
Pratibha Dogra, Ram Prakash Bharti, Gaurav Sharma

TL;DR
This paper combines experimental and computational methods to analyze droplet formation in a cylindrical microfluidic device, revealing detailed flow dynamics, regimes, and predictive models for droplet size and behavior.
Contribution
It introduces a comprehensive mathematical model and regime map for droplet formation in cylindrical microfluidics, advancing understanding and design capabilities.
Findings
Identified distinct droplet breakup stages and flow regimes.
Developed a regime map for droplet and non-droplet regions.
Proposed a novel thin-film model for droplet size prediction.
Abstract
This study investigates the hydrodynamics of droplet formation in a T-shaped cylindrical microfluidic device using micro-PIV experiments and CFD simulations. Devices of 150 micro-m internal diameter were fabricated from PDMS via a cost-effective embedded templating method. Flow visualization was conducted using immiscible silicone oil and deionized water, forming water-in-oil droplets. A mathematical model coupling the Navier-Stokes and conservative level-set equations was solved using the finite element method. Detailed flow fields (velocity, pressure, and phase distribution) were obtained over a wide range of flow-rate ratios (0.1-10) and capillary numbers (0.001-0.1) to characterize droplet formation mechanisms. Phase evolution revealed distinct breakup stages (lag, filling, necking, and pinch-off) and multiple regimes (squeezing, dripping, sausage flow, and parallel flow with tip…
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Taxonomy
TopicsInnovative Microfluidic and Catalytic Techniques Innovation · Electrowetting and Microfluidic Technologies · 3D Printing in Biomedical Research
