Asymmetric Y-Shaped Micromixers With Spherical Mixing Chamber for Enhanced Mixing Efficiency and Reduced Flow Impedance

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Date

2021

Authors

Çetkin, Erdal

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Publisher

Isfahan University of Technology

Open Access Color

GOLD

Green Open Access

No

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Abstract

Microfluidic devices have many attractive qualities such as low cost, small size, and in-field use. Micromixers are very important components of these devices because affect their efficiency. In a passive mixer, the structural characteristics of the mixer are crucial and must be analyzed. This paper presents a numerical study of the mixing in passive Y-shaped micromixers with a spherical mixing chamber for a volume constrained system. The effect of asymmetric bifurcated ducts, the angle in between the inflow ducts, eccentricity and, obstacles inserted in the mixing sphere, on the mixing efficiency and flow impedance is evaluated. Vortical structures characteristics and the possible occurrence of engulfment are also identified. The results show that flow impedance (pressure drop for unit volumetric flow rate) can be decreased greatly for the same mixing efficiency as the volume of the spherical mixing chamber is 20% of the total volume. Insertion of the obstacles into the sphere mixing chamber decreases the mixing efficiency while they increase the flow impedance. The results also show that spherical mixing chamber enhances mixing efficiency while decreasing flow impedance if the volume reserved for it is greater than a limit value which depends on the diameter and length scale ratios in between the mother and daughter ducts as well as the total volume. Overall, the paper documents the variation of mixing efficiency and flow impedance based on the geometrical parameters of three-dimensional asymmetric passive micromixer with sphere mixing chamber.

Description

Keywords

Micromixer, Asymmetric Y-mixer, Spherical mixing chamber, Obstacles

Fields of Science

0404 agricultural biotechnology, 04 agricultural and veterinary sciences, 0405 other agricultural sciences

Citation

WoS Q

Q3

Scopus Q

Q3
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Source

Journal Of Applied Fluid Mechanics

Volume

14

Issue

5

Start Page

1389

End Page

1397
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Citations

Scopus : 6

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Mendeley Readers : 4

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6

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Web of Science™ Citations

5

checked on Apr 27, 2026

Page Views

1217

checked on Apr 27, 2026

Downloads

221

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