Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Computational investigations of the mixing performance inside liquid slugs generated by a microfluidic T-junction

View through CrossRef
Droplet-based microfluidics has gained extensive research interest as it overcomes several challenges confronted by conventional single-phase microfluidics. The mixing performance inside droplets/slugs is critical in many applications such as advanced material syntheses and in situ kinetic measurements. In order to understand the effects of operating conditions on the mixing performance inside liquid slugs generated by a microfluidic T-junction, we have adopted the volume of fluid method coupled with the species transport model to study and quantify the mixing efficiencies inside slugs. Our simulation results demonstrate that an efficient mixing process is achieved by the intimate collaboration of the twirling effect and the recirculating flow. Only if the reagents are distributed transversely by the twirling effect, the recirculating flow can bring in convection mechanism thus facilitating mixing. By comparing the mixing performance inside slugs at various operating conditions, we find that slug size plays the key role in influencing the mixing performance as it determines the amount of fluid to be distributed by the twirling effect. For the cases where short slugs are generated, the mixing process is governed by the fast convection mechanism because the twirling effect can distribute the fluid to the flow path of the recirculating flow effectively. For cases with long slugs, the mixing process is dominated by the slow diffusion mechanism since the twirling effect is insufficient to distribute the large amount of fluid. In addition, our results show that increasing the operating velocity has limited effects on improving the mixing performance. This study provides the insight of the mixing process and may benefit the design and operations of droplet-based microfluidics.
Title: Computational investigations of the mixing performance inside liquid slugs generated by a microfluidic T-junction
Description:
Droplet-based microfluidics has gained extensive research interest as it overcomes several challenges confronted by conventional single-phase microfluidics.
The mixing performance inside droplets/slugs is critical in many applications such as advanced material syntheses and in situ kinetic measurements.
In order to understand the effects of operating conditions on the mixing performance inside liquid slugs generated by a microfluidic T-junction, we have adopted the volume of fluid method coupled with the species transport model to study and quantify the mixing efficiencies inside slugs.
Our simulation results demonstrate that an efficient mixing process is achieved by the intimate collaboration of the twirling effect and the recirculating flow.
Only if the reagents are distributed transversely by the twirling effect, the recirculating flow can bring in convection mechanism thus facilitating mixing.
By comparing the mixing performance inside slugs at various operating conditions, we find that slug size plays the key role in influencing the mixing performance as it determines the amount of fluid to be distributed by the twirling effect.
For the cases where short slugs are generated, the mixing process is governed by the fast convection mechanism because the twirling effect can distribute the fluid to the flow path of the recirculating flow effectively.
For cases with long slugs, the mixing process is dominated by the slow diffusion mechanism since the twirling effect is insufficient to distribute the large amount of fluid.
In addition, our results show that increasing the operating velocity has limited effects on improving the mixing performance.
This study provides the insight of the mixing process and may benefit the design and operations of droplet-based microfluidics.

Related Results

PeTra: A Novel Computer Code for Simulation of Slug Flow
PeTra: A Novel Computer Code for Simulation of Slug Flow
Abstract This paper presents a new transient code, PeTra (Petroleum Transport), specially designed for tracking slugs and pigs in multiphase pipelines. PeTra is a...
Spatial dynamics of predation by carabid beetles on slugs
Spatial dynamics of predation by carabid beetles on slugs
Summary 1. An explicitly spatial sampling approach was employed to test the null hypothesis that the predation on slugs by the carabid beetle Pterostichus melanarius (Illiger) was ...
Surface Characterization of Metallic Fuel Slugs Prepared by Modified Injection Casting
Surface Characterization of Metallic Fuel Slugs Prepared by Modified Injection Casting
Metallic fuel slugs containing rare-earth (RE) elements have high reactivity with quartz (SiO2) molds, and a reaction layer with a considerable thickness is formed at the surface o...
Enhanced mixing efficiency and reduced droplet size with novel droplet generators
Enhanced mixing efficiency and reduced droplet size with novel droplet generators
Abstract Nowadays, droplet microfluidics has become widely utilized for high-throughput assays. Efficient mixing is crucial for initiating biochemical reactions i...
Microfluidic Acoustic Metamaterial SAW Based Sensor
Microfluidic Acoustic Metamaterial SAW Based Sensor
Introduction. Microacoustic sensors based on surface acoustic wave (SAW) devices allow the sensor integration into a wafer based microfluidic analytical platforms such as lab-on-a-...
Reciprocating flow-based centrifugal microfluidics mixer
Reciprocating flow-based centrifugal microfluidics mixer
Proper mixing of reagents is of paramount importance for an efficient chemical reaction. While on a large scale there are many good solutions for quantitative mixing of reagents, a...
Experimental Investigation of Coolant Mixing in the RPV of PWR in the Late Phase of a SBLOCA Event
Experimental Investigation of Coolant Mixing in the RPV of PWR in the Late Phase of a SBLOCA Event
Partial depletion of the primary circuit of a pressurized water reactor during a postulated small break loss of coolant accident can lead to interruption of one-phase flow natural ...

Back to Top