3.9 Article

Design and fabrication of a low-cost wireless camera imaging system for centrifugal microfluidics

期刊

HARDWAREX
卷 11, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.ohx.2022.e00259

关键词

Microfluidics; Imaging; Flow visualisation; Lab-on-a-Disc; Real-time measurements

资金

  1. INTERREG: Eastern Corridor Medical Engineering Centre (ECME) [X INTVA5034/048]
  2. European Union's INTERREG VA Programme

向作者/读者索取更多资源

Centrifugal microfluidic devices combine low-cost instrumentation with highly integrated automation to provide a robust method for handling low-volume fluids. This paper presents the development of a low-cost centrifugal test-stand with an integrated imaging system using a generic wireless camera to record videos directly to a smartphone device. The imaging system allows high-fidelity imaging of the entire disc for flow visualization and real-time color intensity measurements.
Centrifugal microfluidic devices offer a robust method for low-volume fluid handling by combining low-cost instrumentation with highly integrated automation. Crucial to the efficacy of Lab-on-a-Disc (LoaD) device operation is the selection of robust valving technology, the design of on-disc fluidic structures, and accurate control of disc spin-speeds (centrifugal force) during operation. The design and refinement of fluidic and valving structures is often guided by inspecting disc operation using high-speed camera systems. This approach involves synchronising image acquisition with disc rotation to visualise liquid flow through a series of images often presented in a video format. Depending on the decisions taken, such systems can cost from euro4,000 upwards. This paper outlines the development of a low-cost centrifugal test-stand with an integrated imaging system using a generic wireless camera to record videos directly to a smartphone device. This imaging system can be fabricated using only 3D printers and a low-cost CNC milling machine from widely available materials for approximately euro350. High-fidelity imaging of the entire disc for flow visualisation and the recording of real-time colour intensity measurements are facilitated by this standalone device. A vibration analysis study has been performed to determine the rotational velocity range at which the system can be safely operated. Furthermore, the efficacy of the imaging system has been demonstrated by performing real-time colour intensity measurements of dyed water dilutions. (c) 2022 Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

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