Wang Yi, Lin Qiao, Mukherjee Tamal
Department of Mechanical Engineering, Carnegie Mellon University, Pittsburgh, Pennsylvania 15213, USA.
Lab Chip. 2004 Dec;4(6):625-31. doi: 10.1039/b406752e. Epub 2004 Oct 21.
This paper presents an analytical and parameterized model for analyzing the effects of Joule heating on analyte dispersion in electrophoretic separation microchannels. We first obtain non-uniform temperature distributions in the channel resulting from Joule heating, and then determine variations in electrophoretic velocity, based on the fact that the analyte's electrophoretic mobility depends on the buffer viscosity and hence temperature. The convection-diffusion equation is then formulated and solved in terms of spatial moments of the analyte concentration. The resulting model is validated by both numerical simulations and experimental data, and holds for all mass transfer regimes, including unsteady dispersion processes that commonly occur in microchip electrophoresis. This model, which is given in terms of analytical expressions and fully parameterized with channel dimensions and material properties, applies to dispersion of analyte bands of general initial shape in straight and constant-radius-turn channels. As such, the model can be used to represent analyte dispersion in microchannels of more general shape, such as serpentine- or spiral-shaped channels.
本文提出了一种分析和参数化模型,用于分析焦耳热对电泳分离微通道中分析物扩散的影响。我们首先获得由焦耳热导致的通道内非均匀温度分布,然后基于分析物的电泳迁移率取决于缓冲液粘度进而取决于温度这一事实,确定电泳速度的变化。接着根据分析物浓度的空间矩来建立并求解对流扩散方程。所得模型通过数值模拟和实验数据进行了验证,适用于所有传质模式,包括微芯片电泳中常见的非稳态扩散过程。该模型以解析表达式给出,并通过通道尺寸和材料特性进行了完全参数化,适用于直通道和等半径转弯通道中一般初始形状的分析物带的扩散。因此,该模型可用于表示更一般形状的微通道中的分析物扩散,如蛇形或螺旋形通道。