AI Article Synopsis

  • Flexible microfluidic chips offer advantages in applications requiring bending and complex shapes, with the structural complexity being a key factor.
  • A new Tesla valve micromixer with unidirectional flow has been developed, using 3D printing and limonene dissolution, aiming to simplify chip design while maintaining functionality.
  • Experimental results indicate that this Tesla valve micromixer achieves a mixing efficiency of up to 89%, significantly improving mixing performance compared to traditional designs.

Article Abstract

Flexible microfluidic chips have good application prospects in situations with easy bending and complex curvature. An important factor affecting the flexible microfluidic chip is its structural complexity. For example, the hybrid chip includes flow channels, mixing chambers, and one-way valves. How to achieve the same function with as few structures as possible has become an important research topic at present. In this paper, a Tesla valve micromixer with unidirectional flow characteristics is presented. A passive laminar flow Tesla valve micromixer is fabricated through 3D printing technology and limonene dissolution method. The main process is as follows: First of all, high impact polystyrene (HIPS) material was employed to make the Tesla valve channel mold. Second, the channel mold was dissolved in the limonene solvent. The mold of Tesla micromixer is made of HIPS material, the mixing experiment displace that the Tesla valve micromixer is characterized by unidirectional flow compared with the common T-shaped planar channel. At the same time, the 5-AAC Tesla valve micromixer can increase the mixing efficiency to 87%. By using four different groove structures and different flow rates of the mixing effect experiment, the conclusion is that the mixing efficiency of the 6-AAC Tesla valve micromixer is up to 0.89 when the flow rate is 2 mL/min. The results manifest that the Tesla valve structure can effectively improve the mixing efficiency.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9475615PMC
http://dx.doi.org/10.1021/acsomega.2c02075DOI Listing

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