| ID | 69392 |
| FullText URL | |
| Author |
Hirohata, Yuma
Graduate School of Engineering Science, The University of Osaka
Sai, Kazusa
Department of Pure and Applied Physics, Kansai University
Tange, Yuki
Department of Pure and Applied Physics, Kansai University
Nishiyama, Tomohiro
Department of Pure and Applied Physics, Kansai University
Minato, Haruka
Graduate School of Environmental Life Natural Science and Technology, Okayama University
Suzuki, Daisuke
Graduate School of Environmental Life Natural Science and Technology, Okayama University
Itano, Tomoaki
Department of Pure and Applied Physics, Kansai University
Sugiyama, Kazuyasu
Graduate School of Engineering Science, The University of Osaka
Sugihara-Seki, Masako
Department of Pure and Applied Physics, Kansai University
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| Abstract | The inertial migration of hydrogel particles suspended in a Newtonian fluid flowing through a square channel is studied both experimentally and numerically. Experimental results demonstrate significant differences in the focusing positions of the deformable and rigid particles, highlighting the role of particle deformability in inertial migration. At low Reynolds numbers (Re), hydrogel particles migrate towards the centre of the channel cross-section, whereas the rigid spheres exhibit negligible lateral motion. At finite Re, they focus at four points along the diagonals in the downstream cross-section, in contrast to the rigid particles which focus near the centre of the channel face at similar Re . Numerical simulations using viscous hyperelastic particles as a model for hydrogel particles reproduced the experimental results for the particle distribution with an appropriate Young’s modulus of the hyperelastic particles. Further numerical simulations over a broader range of Re and the capillary number (Ca) reveal various focusing patterns of the particles in the channel cross-section. The phase transitions between them are discussed in terms of the inertial lift and the lift due to particle deformation, which would act in the direction towards lower shear. The stability of the channel centre is analysed using an asymptotic expansion approach to the migration force at low Re and Ca. The theoretical analysis predicts the critical condition for the transition, which is consistent with the direct numerical simulation. These experimental, numerical and theoretical results contribute to a deeper understanding of inertial migration of deformable particles.
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| Keywords | flow-structure interactions
microfluidics
particle/fluid flow
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| Published Date | 2025-09-18
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| Publication Title |
Journal of Fluid Mechanics
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| Volume | volume1019
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| Publisher | Cambridge University Press (CUP)
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| Start Page | A22
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| ISSN | 0022-1120
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| NCID | AA00698198
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| Content Type |
Journal Article
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| language |
English
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| OAI-PMH Set |
岡山大学
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| Copyright Holders | © The Author(s), 2025.
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| File Version | publisher
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| DOI | |
| Web of Science KeyUT | |
| Related Url | isVersionOf https://doi.org/10.1017/jfm.2025.10574
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| License | https://creativecommons.org/licenses/by/4.0/
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| Citation | Hirohata Y, Sai K, Tange Y, et al. Experimental and numerical study on the inertial migration of hydrogel particles suspended in square channel flows. Journal of Fluid Mechanics. 2025;1019:A22. doi:10.1017/jfm.2025.10574
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| 助成情報 |
20H02072:
微小流路内流れを利用した細胞分離の基礎研究
( 独立行政法人日本学術振興会 / Japan Society for the Promotion of Science )
24K00809:
細胞の大きさ・形状・変形性に基づく細胞分離の流体力学的研究
( 独立行政法人日本学術振興会 / Japan Society for the Promotion of Science )
JPMJSP2138:
( 国立研究開発法人科学技術振興機構 / Japan Science and Technology Agency )
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