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首页> 外文期刊>Journal of Computational and Nonlinear Dynamics >Use of B-Spline in the Finite Element Analysis: Comparison With ANCF Geometry
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Use of B-Spline in the Finite Element Analysis: Comparison With ANCF Geometry

机译:B样条在有限元分析中的使用:与ANCF几何的比较

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This paper examines the limitations of using B-spline representation as an analysis tool by comparing its geometry with the nonlinear finite element absolute nodal coordinate formulation (ANCF) geometry. It is shown that while both B-spline and ANCF geometries can be used to model nonstructural discontinuities using linear connectivity conditions, there are fundamental differences between B-spline and ANCF geometries. First, while B-spline geometry can always be converted to ANCF geometry, the converse is not true; that is, ANCF geometry cannot always be converted to B-spline geometry. Second, because of the rigid structure of the B-spline recurrence formula, there are restrictions on the order of the parameters and basis functions used in the polynomial interpolation; this in turn can lead to models that have significantly larger number of degrees of freedom as compared to those obtained using ANCF geometry. Third, in addition to the known fact that B-spline does not allow for straightforward modeling of T-junctions, B-spline representation cannot be used in a straightforward manner to model structural discontinuities. It is shown in this investigation that ANCF geometric description can be used to develop new spatial chain models governed by linear connectivity conditions which can be applied at a preprocessing stage allowing for an efficient elimination of the dependent variables. The modes of the deformations at the definition points of the joints that allow for rigid body rotations between ANCF finite elements are discussed. The use of the linear connectivity conditions with ANCF spatial finite elements leads to a constant inertia matrix and zero Coriolis and centrifugal forces. The fully parameterized structural ANCF finite elements used in this study allow for the deformation of the cross section and capture the coupling between this deformation and the stretch and bending. A new chain model that employs different degrees of continuity for different coordinates at the joint definition points is developed in this investigation. In the case of cubic polynomial approximation, C~1 continuity conditions are used for the coordinate line along the joint axis; while C~0 continuity conditions are used for the other coordinate lines. This allows for having arbitrary large rigid body rotation about the axis of the joint that connects two flexible links. Numerical examples are presented in order to demonstrate the use of the formulations developed in this paper.
机译:本文通过将B样条表示法的几何形状与非线性有限元绝对节点坐标表示(ANCF)几何形状进行比较,研究了使用B样条表示法作为分析工具的局限性。结果表明,虽然B样条曲线和ANCF几何都可以使用线性连通性条件来建模非结构间断,但B样条曲线和ANCF几何之间存在根本差异。首先,虽然B样条曲线几何图形始终可以转换为ANCF几何图形,但反之则不正确;也就是说,ANCF几何图形不能总是转换为B样条几何图形。其次,由于B样条递归公式的刚性结构,多项式插值中使用的参数和基函数的顺序受到限制。与使用ANCF几何获得的模型相比,这反过来会导致模型具有更大的自由度。第三,除了已知的事实,即B样条不允许直接对T型接头建模,B样条表示不能直接用于对结构不连续性进行建模。在这项研究中表明,ANCF几何描述可用于开发受线性连通性条件支配的新空间链模型,该模型可在预处理阶段应用,从而有效消除因变量。讨论了允许在ANCF有限元之间进行刚体旋转的节点定义点处的变形模式。将线性连通性条件与ANCF空间有限元配合使用会产生恒定的惯性矩阵,零的科氏力和离心力。本研究中使用的全参数化结构ANCF有限元可允许横截面变形,并捕获此变形与拉伸和弯曲之间的耦合。在这项研究中,开发了一种新的链模型,该模型对关节定义点处的不同坐标采用不同的连续性程度。在三次多项式逼近的情况下,沿关节轴的坐标线使用C〜1连续性条件。而C〜0连续性条件用于其他坐标线。这允许绕连接两个挠性链节的接头的轴线具有任意大的刚体旋转。给出了数值示例,以证明本文开发的配方的使用。

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