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- W1965165082 endingPage "055501" @default.
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- W1965165082 abstract "The inertial migration of a single neutrally buoyant circular particle in both nonoscillatory and oscillatory pressure-driven flows in a two-dimensional (2D) channel at moderately high Reynolds numbers has been numerically investigated by using the direct-forcing fictitious domain (DF/FD) method. In both nonoscillatory and oscillatory cases, there is only one equilibrium position for any Reynolds number, and the equilibrium positions first shift closer to the channel wall and then closer to the channel centerline as the Reynolds number increases, unlike the 3D nonoscillatory pipe case where there exist two branches of equilibrium positions. The equilibrium positions for a spherical particle in a 3D nonoscillatory channel flow are also computed and found to behave in the same way as the 2D case. The reason for the difference in the equilibrium positions between the channel and pipe flows is attributed to the effects of the outer boundary on the particle-induced flow structures. The oscillatory flow generally makes the equilibrium position closer to the channel centerline, and the equilibrium positions are more sensitive to the frequency than the amplitude of the oscillatory pressure gradient." @default.
- W1965165082 created "2016-06-24" @default.
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- W1965165082 date "2009-09-14" @default.
- W1965165082 modified "2023-09-27" @default.
- W1965165082 title "Inertial migration of a circular particle in nonoscillatory and oscillatory pressure-driven flows at moderately high Reynolds numbers" @default.
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- W1965165082 doi "https://doi.org/10.1088/0169-5983/41/5/055501" @default.
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