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Modeling convection-driven diffusion-controlled wet chemical etching using a total-concentration fixed-grid method

机译:使用全浓度固定网格方法对流驱动扩散控制的湿法化学蚀刻建模

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摘要

A total-concentration fixed-grid method is presented to model the convection-driven wet chemical etching process. The proposed method is analogous to the enthalpy method used in the modeling of melting and solidification problems. A total concentration which is the sum of the unreacted etchant concentration and the reacted etchant concentration is defined. The governing equation based on the newly defined total concentration includes the interface condition. Hence the etchfront position can be found implicitly using the proposed method. The reacted etchant concentration is used to predict the etch front position while etching progresses. Since the grid size is fixed, there is no grid velocity, unlike the case with existing moving-grid approaches. Cartesian grids can be used to capture the complicated etch front evolved during etching. In this article, a two-dimensional, incompressible, Newtonian fluid with an infinitely fast reaction at the interface is considered. For demonstration purposes, a finite-volume method is used to solve the momentum equations, the continuity equation, and the convection-driven mass diffusion equation with prescribed initial and boundary conditions. The etch front evolution obtained using the proposed method is compared with the existing moving-grid method, and good agreement is found.
机译:提出了一种全浓度固定网格法对流驱动的湿法化学刻蚀工艺进行建模。所提出的方法类似于在熔融和凝固问题建模中使用的焓法。定义了总浓度,该总浓度是未反应的蚀刻剂浓度和反应的蚀刻剂浓度之和。基于新定义的总浓度的控制方程式包括界面条件。因此,使用所提出的方法可以隐式地找到蚀刻前位置。反应的蚀刻剂浓度用于在蚀刻进行时预测蚀刻前位置。由于栅格大小是固定的,因此与现有的移动栅格方法不同,没有栅格速度。笛卡尔网格可用于捕获蚀刻过程中形成的复杂蚀刻前沿。在本文中,将考虑在界面处具有无限快速反应的二维不可压缩牛顿流体。出于演示目的,使用有限体积方法来求解具有指定初始条件和边界条件的动量方程,连续性方程和对流驱动的质量扩散方程。将所提出的方法获得的刻蚀锋面发展与现有的移动网格方法进行比较,并找到了很好的一致性。

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