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用于微反应器中温度控制和堵塞预防的脉冲超声

Pulsed ultrasound for temperature control and clogging prevention in micro-reactors.

作者信息

Delacour Claire, Lutz Cecile, Kuhn Simon

机构信息

KU Leuven, Department of Chemical Engineering, Celestijnenlaan 200F, 3001 Leuven, Belgium.

Service Adsorption, ARKEMA, Groupement de Recherche de Lacq, 64170 Lacq, France.

出版信息

Ultrason Sonochem. 2019 Jul;55:67-74. doi: 10.1016/j.ultsonch.2019.03.012. Epub 2019 Mar 13.

Abstract

Ultrasonic micro-reactors are frequently applied to prevent micro-channel clogging in the presence of solid materials. Continuous sonication will lead to a sizeable energy input resulting in a temperature increase in the fluidic channels and concerns regarding microchannel degradation. In this paper, we investigate the application of pulsed ultrasound as a less invasive approach to prevent micro-channel clogging, while also controlling the temperature increase. The inorganic precipitation of barium sulfate particles was studied, and the impact of the effective ultrasonic treatment ratio, frequency and load power on the particle size distribution, pressure and temperature was quantified in comparison to non-sonicated experiments. The precipitation reactions were performed in a continuous reactor consisting of a micro-reactor chip attached to a Langevin-type transducer. It was found that adjusting the pulsed ultrasound conditions prevented microchannel clogging by reducing the particle size to the same magnitude as observed for continuous sonication. Furthermore, reducing the effective treatment ratio from 100 to 12.5% decreases the temperature rise from 7 to 1 °C.

摘要

超声微反应器常用于在存在固体材料的情况下防止微通道堵塞。连续超声处理会导致相当大的能量输入,从而导致流体通道温度升高,并引发对微通道降解的担忧。在本文中,我们研究了脉冲超声作为一种侵入性较小的方法在防止微通道堵塞的同时控制温度升高的应用。研究了硫酸钡颗粒的无机沉淀,并与未进行超声处理的实验相比,量化了有效超声处理率、频率和负载功率对颗粒尺寸分布、压力和温度的影响。沉淀反应在一个连续反应器中进行,该反应器由连接到兰姆波型换能器的微反应器芯片组成。研究发现,通过将颗粒尺寸减小到与连续超声处理时观察到的相同大小,调整脉冲超声条件可防止微通道堵塞。此外,将有效处理率从100%降低到12.5%可使温度升高从7℃降至1℃。

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