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Adaptive Shrink-Wrapping for Automatic Extraction of Surfaces from Assemblies

机译:自动收缩包装,用于自动提取组件表面

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The pacing item in the application of computational fluid dynamics (CFD) to new configurations is the pre-processing phase, of which preparation of the geometry is the most time-consuming step. This is especially true for configurations that are defined in a computer-aided design (CAD) system. The primary reason for this difficulty is the existence of both large and small features, some of which are not needed to achieve the results desired by the customer. Users can sometimes remove small unwanted features by suppressing them in the CAD system; this however is not an option when the features emerge during the assembly of parts into a whole model. In a previous paper, a new technique called nested geometric refinement was introduced for automatically extracting a computational model from an assembly of parts with features of varying resolutions. When first applied, the technique generates a configuration approximation that has a globally-applied user-defined resolution that is independent of the local feature size. A simple adaptation process is then applied to resolve geometric features only where needed. The technique is somewhat similar to the shrink-wrapping technique that has become available recently. The further development of the technique is shown as well as the enhancement from two-dimensional to three-dimensional configurations. In these cases, the effects of both global refinement and adapted refinement are shown. The new technique is very efficient, since small features are ignored in the initial representation. Grids can be generated on assemblies, regardless of how well the parts fit together. Through the use of an adaptation method, the configuration can be refined such that only the pertinent features are resolved.
机译:将计算流体动力学(CFD)应用于新配置的起搏物品是预处理阶段,其中几何形状的制备是最耗时的步骤。这对于计算机辅助设计(CAD)系统中定义的配置尤其如此。这种难度的主要原因是存在大小的特征,其中一些不需要达到客户所需的结果。用户有时可以通过在CAD系统中抑制它们来消除小的不需要的功能;然而,这不是一种选择,当特征在组装到整个模型中出现时出现。在前一篇论文中,引入了一种新的技术,用于自动从部件的组件中自动提取计算模型,其具有不同分辨率的特征。当第一次应用时,该技术生成具有全局应用的用户定义分辨率的配置近似,其与本地特征大小无关。然后应用简单的适应过程以在需要的情况下解决几何特征。该技术有点类似于最近可用的收缩包装技术。显示了该技术的进一步发展,以及从二维到三维配置的增强。在这些情况下,显示了全局细化和适应改进的影响。新技术非常有效,因为在初始表示中忽略了小功能。无论部件如何合适,都可以在组件上生成网格。通过使用自适应方法,可以改进配置,使得仅解决相关的特征。

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