KU Leuven, Department of Chemical Engineering, Celestijnenlaan 200F, 3001 Leuven, Belgium.
Lab Chip. 2019 Jan 15;19(2):316-327. doi: 10.1039/c8lc00675j.
The handling of solids in microreactors represents a challenging task. In this paper, we present an acoustophoretic microreactor developed to manage particles in flow and to control the material synthesis process. The reactor was designed as a layered resonator with an actuation frequency of 1.21 MHz, in which a standing acoustic wave is generated in both the depth and width direction of the microchannel. The acoustophoretic force exerted by the standing wave on the particles focuses them to the channel center. A parametric study of the effect of flow rate, particle size and ultrasound conditions on the focusing efficiency was performed. Furthermore, the reactive precipitation of calcium carbonate and barium sulfate was chosen as a model system for material synthesis. The acoustophoretic focusing effect avoids solid deposition on the channel walls and thereby minimizes reactor fouling and thus prevents clogging. Both the average particle size and the span of the particle size distribution of the synthesized particles are reduced by applying high-frequency ultrasound. The developed reactor has the potential to control a wide range of material synthesis processes.
在微反应器中处理固体是一项具有挑战性的任务。在本文中,我们提出了一种声悬浮微反应器,用于在流动中处理颗粒并控制材料合成过程。该反应器设计为具有 1.21MHz 激励频率的分层谐振器,在微通道的深度和宽度方向上产生驻波。驻波对颗粒施加的声悬浮力将它们聚焦到通道中心。对流速、颗粒尺寸和超声条件对聚焦效率的影响进行了参数研究。此外,碳酸钙和硫酸钡的反应沉淀被选为材料合成的模型体系。声悬浮聚焦效应避免了固体在通道壁上的沉积,从而最大程度地减少了反应器结垢,从而防止了堵塞。通过施加高频超声,可减小合成颗粒的平均粒径和粒径分布的跨度。所开发的反应器具有控制广泛的材料合成过程的潜力。