2007The proceedings of the JSME annual meetingOpen access

1447 Study on micromixing process utilizing gas-liquid free interface

Naoki Ono, Tsuyoshi SUZUMURA

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Abstract

We propose a new micromixing process utilizing gas-liquid free interface. This new process enhances mixing by the narrowing and winding flow due to the existence of bubbles. Moreover, because shear stress does not work on gas-liquid free interface, this process will reduce pressure drop. Through flow experiment and CFD analysis, we compared the mixing performance of the new micromixer with that of conventional Y flow micromixer. The experimental result proved that the new micromixer can promote more mixing than Y flow micromixer. Furthermore, the CFD analysis revealed that the new micromixer can reduce pressure drop.

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We propose a new micromixing process utilizing gas-liquid free interface. This new process enhances mixing by the narrowing and winding flow due to the existence of bubbles. Moreover, because shear stress does not work on gas-liquid free interface, this process will reduce pressure drop. Through flow experiment and CFD analysis, we compared the mixing performance of the new micromixer with that of conventional Y flow micromixer. The experimental result proved that the new micromixer can promote more mixing than Y flow micromixer. Furthermore, the CFD analysis revealed that the new micromixer can reduce pressure drop.

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Available abstract

We propose a new micromixing process utilizing gas-liquid free interface. This new process enhances mixing by the narrowing and winding flow due to the existence of bubbles. Moreover, because shear stress does not work on gas-liquid free interface, this process will reduce pressure drop. Through flow experiment and CFD analysis, we compared the mixing performance of the new micromixer with that of conventional Y flow micromixer. The experimental result proved that the new micromixer can promote more mixing than Y flow micromixer. Furthermore, the CFD analysis revealed that the new micromixer can reduce pressure drop.

Key concepts: Micromixer, Micromixing, Mixing (physics), Pressure drop, Materials science, Mechanics, Computational fluid dynamics, Flow (mathematics)

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