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Abstract:
With the aim of deepening the fundamental understanding of particle flow behaviors in inertial microfluidics, a mechanism of collision-triggered particle trapping in a confined rectangular microcavity (400 x 400 mu m(2)) using microvortices is proposed, and an intriguing phenomenon that the orbit area of large particles is larger than that of small particles (diameter range of 22-38 mu m) under the same flow conditions (Reynolds number = 178) is observed, which is in contrast to that indicated in previous reports. Moreover, the flow field structures of the microvortices are studied by micro-particle image velocimetry (micro-PIV), and the rotating behavior of a single particle (diameter = 40 mu m) during orbiting is first measured experimentally. The results are expected to provide useful guidelines for the applications of microcavity-based microfluidics. (C) 2017 The Japan Society of Applied Physics
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APPLIED PHYSICS EXPRESS
ISSN: 1882-0778
Year: 2017
Issue: 9
Volume: 10
2 . 3 0 0
JCR@2022
ESI Discipline: PHYSICS;
ESI HC Threshold:158
CAS Journal Grade:3
Cited Count:
WoS CC Cited Count: 24
SCOPUS Cited Count: 22
ESI Highly Cited Papers on the List: 0 Unfold All
WanFang Cited Count:
Chinese Cited Count:
30 Days PV: 1
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