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用于增强电化学反应器中传质的3D打印脉动器。

3D-printed pulsator to enhance mass transfer in electrochemical reactors.

作者信息

Teenakul Kavin, Arenas Luis Fernando, Hereijgers Jonas

机构信息

Research Group Applied Electrochemistry & Catalysis, University of Antwerp, Universiteitsplein 1, 2610 Wilrijk, Belgium.

出版信息

HardwareX. 2025 Mar 27;22:e00645. doi: 10.1016/j.ohx.2025.e00645. eCollection 2025 Jun.

Abstract

This study presents a cost-effective diaphragm pulsator, constructed for approximately €500, designed to enhance mass transport in laboratory electrochemical reactors. The pulsator allows accurate control of pulsation frequency between 1 Hz and 6 Hz and displacement volume, with simple programmability using an Arduino microcontroller. The design features multiple chambers that effectively isolate corrosive liquids from the mechanical components, ensuring durability and extended operational life. The pulsator's 3D-printed components can be customized with different materials to suit various applications. Engineered to generate a pulsating flow profile that closely resembles a sinusoidal wave, video tracking analysis confirmed the sinusoidal nature of the flow, demonstrating consistent flow profile generation with adjustable frequency and amplitude. The maximum volume displacement achieved was 11.9 mL, which was reduced to 2.0 mL when the electrochemical cell was connected. Limiting current experiments with a ferri/ferrocyanide electrolyte showed that the mass transport coefficient of a typical cell increased from 2.3 × 10 cm/s under constant flow to 4.5 × 10 cm/s under pulsating conditions. These findings validate that the adjustable, Arduino-programmable sinusoidal pulsation generated by the diaphragm pulsator offers a practical and customizable method for enhancing mass transport in small-scale electrochemical reactors.

摘要

本研究展示了一种经济高效的隔膜式脉动器,其制造成本约为500欧元,旨在增强实验室电化学反应器中的传质效果。该脉动器能够精确控制1赫兹至6赫兹之间的脉动频率和排量,通过使用Arduino微控制器实现简单的可编程性。其设计特点包括多个腔室,可有效将腐蚀性液体与机械部件隔离开来,确保耐用性和延长使用寿命。脉动器的3D打印部件可使用不同材料定制,以适应各种应用。该脉动器设计用于产生与正弦波非常相似的脉动流型,视频跟踪分析证实了流型的正弦特性,表明可通过调节频率和振幅产生一致的流型。实现的最大排量为11.9毫升,连接电化学池后降至2.0毫升。使用铁氰化铁/亚铁氰化铁电解质进行的极限电流实验表明,典型电池的传质系数在恒定流条件下为2.3×10厘米/秒,在脉动条件下增至4.5×10厘米/秒。这些发现证实,隔膜式脉动器产生的可调节、可编程的正弦脉动为增强小型电化学反应器中的传质提供了一种实用且可定制的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/84de/11999530/015194255b2b/ga1.jpg

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