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An error indicator and automatic adaptive meshing for electrostatic boundary element simulations

机译:用于静电边界元模拟的错误指示器和自动自适应网格划分

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Accurate electrostatic simulations are required for the analysis of micro electromechanical systems (MEMS) and interconnects in very large scale integration (VLSI) design. Typical simulations involve complex three-dimensional (3-D) geometries together with various dielectric materials, conductors, and boundary conditions. The boundary element method is well suited for such computations. For highly accurate solutions, the meshing of the geometry becomes increasingly important. A scheme is presented which allows generating an optimal mesh automatically based on a coarse initial discretization, e.g., a CAD model. An error indicator derived from boundary integral equations monitors the solution accuracy in each boundary element. H-type or p-type mesh refinement is applied to areas which contribute strongly to the overall error. The method applies to both two-dimensional (2-D) and 3-D simulations containing elements of various orders and shapes. The generated refined meshes result in significantly higher solution accuracy for a given simulation size.
机译:对于超大规模集成(VLSI)设计中的微机电系统(MEMS)和互连分析,需要精确的静电仿真。典型的模拟涉及复杂的三维(3-D)几何形状以及各种介电材料,导体和边界条件。边界元法非常适合这种计算。对于高度精确的解决方案,几何的网格划分变得越来越重要。提出了一种方案,该方案允许基于粗略的初始离散化例如CAD模型自动生成最佳网格。从边界积分方程式导出的误差指标监控每个边界元素中的求解精度。 H型或p型网格细化应用于对总体误差有重大贡献的区域。该方法适用于二维(2-D)和3-D仿真,其中包含各种顺序和形状的元素。对于给定的仿真大小,生成的精炼网格可显着提高求解精度。

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