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    Experimental study of turbulent mixing in a T-shaped mixer

    Huixin Li1,2,3, Mohammad Mehdi Zamani Asl1, Bastian Bäuerlein4,5, Kerstin Avila4,5, Duo Xu1,2,3,*, and Marc Avila1

    • *Contact author: duo.xu@imech.ac.cn

    Phys. Rev. Fluids 10, 114502 – Published 12 November, 2025

    DOI: https://doi.org/10.1103/9g5s-68c3

    Abstract

    One of the most widespread canonical devices for fluid mixing is the T-shaped mixer, in which two opposing miscible liquid streams meet at a junction and then mix along a main channel. Laminar steady and time-periodic flows in T-shaped mixers have been thoroughly studied, but turbulent flows have received much less scrutiny despite their prevalence in applications. We introduce here a novel experimental setup with a hydraulic diameter of 4 cm that enables the optical study of turbulent mixing at small scales. Using this setup, we perform two-dimensional particle image velocimetry and planar laser-induced fluorescence measurements. First, we successfully replicate characteristic flow regimes observed in microscale T-shaped mixers at low Reynolds numbers. We then focus on the turbulent regime and characterize the turbulent kinetic energy and dissipation along the mixing channel. Further, we measure the scalar concentration variance and its corresponding probability density function and spectra. The latter exhibits an incipient Batchelor scaling. We estimate the mechanical-to-scalar timescale ratio and examine the link between the turbulent velocity and scalar fields. The measurement data are compared with model predictions and correlations used in engineering practice, and with our own direct numerical simulations performed with a spectral-element code.

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