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Automated mixed dimensional modelling from 2D and 3D CAD models

机译:通过2D和3D CAD模型自动进行混合尺寸建模

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The motivation for this paper is to present procedures for automatically creating idealised finite element models from the 3D CAD solid geometry of a component. The procedures produce an accurate and efficient analysis model with little effort on the part of the user. The technique is applicable to thin walled components with local complex features and automatically creates analysis models where 3D elements representing the complex regions in the component are embedded in an efficient shell mesh representing the mid-faces of the thin sheet regions. As the resulting models contain elements of more than one dimension, they are referred to as mixed dimensional models.rnAlthough these models are computationally more expensive than some of the idealisation techniques currently employed in industry, they do allow the structural behaviour of the model to be analysed more accurately, which is essential if appropriate design decisions are to be made. Also, using these procedures, analysis models can be created automatically whereas the current idealisation techniques are mostly manual, have long preparation times, and are based on engineering judgement. rnIn the paper the idealisation approach is first applied to 2D models that are used to approximate axisymmetric components for analysis. For these models 2D elements representing the complex regions are embedded in a ID mesh representing the midline of the cross section of the thin sheet regions. Also discussed is the coupling, which is necessary to link the elements of different dimensionality together. Analysis results from a 3D mixed dimensional model created using the techniques in this paper are compared to those from a stiffened shell model and a 3D solid model to demonstrate the improved accuracy of the new approach. At the end of the paper a quantitative analysis of the reduction in computational cost due to shell meshing thin sheet regions demonstrates that the reduction in degrees of freedom is proportional to the square of the aspect ratio of the region, and for long slender solids, the reduction can be proportional to the aspect ratio of the region if appropriate meshing algorithms are used.
机译:本文的目的是提出一种从零件的3D CAD实体几何自动创建理想化有限元模型的过程。该程序无需用户的努力即可生成准确而有效的分析模型。该技术适用于具有局部复杂特征的薄壁组件,​​并自动创建分析模型,在该模型中,将代表组件中复杂区域的3D元素嵌入到代表薄板区域中间面的有效外壳网格中。由于生成的模型包含一个以上维度的元素,因此将它们称为混合维度模型。尽管这些模型在计算上比目前行业中采用的某些理想化技术更昂贵,但它们的确允许模型的结构行为得以实现。进行更准确的分析,这对于做出适当的设计决策至关重要。同样,使用这些程序,可以自动创建分析模型,而当前的理想化技术大部分是手动的,准备时间长,并且基于工程判断。在本文中,理想化方法首先应用于二维模型,该模型用于近似轴对称分量进行分析。对于这些模型,将表示复杂区域的2D元素嵌入ID网格中,该ID网格表示薄片区域的横截面的中线。还讨论了耦合,这是将不同尺寸的元素链接在一起所必需的。使用本文中的技术创建的3D混合尺寸模型的分析结果与加劲壳模型和3D实体模型的分析结果进行了比较,以证明新方法的改进精度。在本文的最后,对由于壳啮合薄板区域而导致的计算成本下降的定量分析表明,自由度的下降与该区域的长宽比的平方成正比,而对于长而细长的实体,则如果使用适当的网格划分算法,则缩小可以与区域的纵横比成比例。

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