Bertsch A, Heimgartner S, Cousseau P, Renaud P
Swiss Federal Institute of Technology, EPFL, DMT-IMS, 1015, Lausanne, Switzerland.
Lab Chip. 2001 Sep;1(1):56-60. doi: 10.1039/b103848f. Epub 2001 Aug 9.
Mixing liquids at the micro-scale is difficult because the low Reynolds numbers in microchannels and in microreactors prohibit the use of conventional mixing techniques based on mechanical actuators and induce turbulence. Static mixers can be used to solve this mixing problem. This paper presents micromixers with geometries very close to conventional large-scale static mixers used in the chemical and food-processing industry. Two kinds of geometries have been studied. The first type is composed of a series of stationary rigid elements that form intersecting channels to split, rearrange and combine component streams. The second type is composed of a series of short helix elements arranged in pairs, each pair comprised of a right-handed and left-handed element arranged alternately in a pipe. Micromixers of both types have been designed by CAD and manufactured with the integral microstereolithography process, a new microfabrication technique that allows the manufacturing of complex three-dimensional objects in polymers. The realized mixers have been tested experimentally. Numerical simulations of these micromixers using the computational fluid dynamics (CFD) program FLUENT are used to evaluate the mixing efficiency. With a low pressure drop and good mixing efficiency these truly three-dimensional micromixers can be used for mixing of reactants or liquids containing cells in many microTAS applications.
在微尺度下混合液体很困难,因为微通道和微反应器中的低雷诺数使得基于机械驱动和诱导湍流的传统混合技术无法使用。静态混合器可用于解决这种混合问题。本文介绍了几何形状与化学和食品加工行业中使用的传统大型静态混合器非常接近的微混合器。研究了两种几何形状。第一种类型由一系列固定的刚性元件组成,这些元件形成相交的通道,以分割、重新排列和组合组分流。第二种类型由一系列成对排列的短螺旋元件组成,每对由一个右旋元件和一个左旋元件在管道中交替排列。这两种类型的微混合器均通过计算机辅助设计(CAD)进行设计,并采用整体微立体光刻工艺制造,这是一种新的微制造技术,能够在聚合物中制造复杂的三维物体。已对制成的混合器进行了实验测试。使用计算流体动力学(CFD)程序FLUENT对这些微混合器进行数值模拟,以评估混合效率。这些真正的三维微混合器具有低压降和良好的混合效率,可用于许多微全分析系统(μTAS)应用中的反应物或含细胞液体的混合。