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复杂多相流对微通道反应器中秋兰姆电合成的影响。

Influence of Complex Multiphasic Flow on the Thiuram Electrosynthesis in a Microchannel Reactor.

作者信息

Zheng Siyuan, Wang Kai

机构信息

The State Key Laboratory of Chemical Engineering, Department of Chemical Engineering, Tsinghua University, 801 Gongwu Building, Tsinghua, Haidian, Beijing, 100084, China.

National Institute of Clean-and-Low-Carbon Energy, Future Science City, Changping, Beijing, 102211, China.

出版信息

ChemSusChem. 2024 Dec 6;17(23):e202401368. doi: 10.1002/cssc.202401368. Epub 2024 Oct 18.

Abstract

As an important sustainable method for chemical synthesis, organic electrosynthesis experienced a renaissance in recent years for its excellent atom economy. Although microchannel reactors have been proposed to advanced electrosynthesis devices to obtain low energy cost and high reaction performance, the complex multiphasic flow in the electrochemical microchannels are very less reported and the effects of flow condition on the electrosynthesis reaction are less reported. Taking the electrosynthesis of tetraethyl thiuram disulfide (TETD) as a typical case, we developed a visualized electrochemical microchannel reactor equipped with fluorine-doped tin oxide (FTO) loaded glass electrode to investigate the gas-liquid-liquid triple phase flow pattern and the main factors influenced the response current at certain applied cell voltage. The gas-liquid-liquid hybrid flow with low gas hold-up and high liquid flow rate was found crucial for preventing coverage of TETD on the electrode, which provided 23.1 % low current attenuation ratio at 3.0 V cell voltage. The research not only exhibited the complex evolution mechanism of the response current, but also showed the importance of flow condition control for balancing the work efficiency and energy consumption of electrosynthesis process.

摘要

作为化学合成的一种重要可持续方法,有机电合成近年来因其出色的原子经济性而迎来复兴。尽管已提出将微通道反应器应用于先进的电合成装置以实现低能量成本和高反应性能,但关于电化学微通道中复杂的多相流的报道非常少,且流动条件对电合成反应影响的报道也较少。以二硫化四乙基秋兰姆(TETD)的电合成为典型案例,我们开发了一种配备氟掺杂氧化锡(FTO)负载玻璃电极的可视化电化学微通道反应器,以研究气-液-液三相流型以及在特定施加电池电压下影响响应电流的主要因素。发现具有低气体滞留率和高液体流速的气-液-液混合流对于防止TETD覆盖电极至关重要,在3.0 V电池电压下提供了23.1%的低电流衰减率。该研究不仅展示了响应电流复杂的演变机制,还表明了控制流动条件对于平衡电合成过程的工作效率和能量消耗的重要性。

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