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Finite Element Modeling of the Contact Geometry and Deformation in Biomechanics Applications

机译:生物力学应用中接触几何形状和变形的有限元建模

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摘要

The main contribution of this paper is to demonstrate the feasibility of using one computational environment for developing accurate geometry as well as performing the analysis of detailed biomechanics models. To this end, the finite element (FE) absolute nodal coordinate formulation (ANCF) and multibody system (MBS) algorithms are used in modeling both the contact geometry and ligaments deformations in biomechanics applications. Two ANCF approaches can be used to model the rigid contact surface geometry. In the first approach, fully parameterized ANCF volume elements are converted to surface geometry using parametric relationship that reduces the number of independent coordinate lines. This parametric relationship can be defined analytically or using a spline function representation. In the second approach, an ANCF surface that defines a gradient deficient thin plate element is used. This second approach does not require the use of parametric relations or spline function representations. These two geometric approaches shed light on the generality of and the flexibility offered by the ANCF geometry as compared to computational geometry (CG) methods such as B-splines and NURBS (Non-Uniform Rational B-Splines). Furthermore, because B-spline and NURBS representations employ a rigid recurrence structure, they are not suited as general analysis tools that capture different types of joint discontinuities. ANCF finite elements, on the other hand, lend themselves easily to geometric description and can additionally be used effectively in the analysis of ligaments, muscles, and soft tissues (LMST), as demonstrated in this paper using the knee joint as an example. In this study, ANCF finite elements are used to define the femur/tibia rigid body contact surface geometry. The same ANCF finite elements are also used to model the MCL and LCL ligament deformations. Two different contact formulations are used in this investigation to predict the femur/tibia contact forces; the elastic contact formulation which allows for penetrations and separations at the contact points, and the constraint contact formulation in which the nonconformal contact conditions are imposed as constraint equations, and as a consequence, no separations or penetrations at the contact points are allowed. For both formulations, the contact surfaces are described in a parametric form using surface parameters that enter into the ANCF finite element geometric description. A set of nonlinear algebraic equations that depend on the surface parameters is developed and used to determine the location of the contact points. These two contact formulations are implemented in a general MBS algorithm that allows for modeling rigid and flexible body dynamics.
机译:本文的主要贡献在于证明使用一种计算环境开发精确的几何图形以及进行详细的生物力学模型分析的可行性。为此,在生物力学应用中,使用有限元(FE)绝对节点坐标公式(ANCF)和多体系统(MBS)算法对接触几何形状和韧带变形进行建模。可以使用两种ANCF方法来建模刚性接触表面的几何形状。在第一种方法中,使用参数关系将完全参数化的ANCF体积元素转换为曲面几何形状,从而减少了独立坐标线的数量。可以通过分析或使用样条函数表示法定义此参数关系。在第二种方法中,使用定义梯度不足的薄板元件的ANCF表面。第二种方法不需要使用参数关系或样条函数表示。与诸如B样条和NURBS(非均匀有理B样条)之类的计算几何(CG)方法相比,这两种几何方法揭示了ANCF几何的一般性和灵活性。此外,由于B样条曲线和NURBS表示采用严格的递归结构,因此它们不适合用作捕获不同类型的关节间断的通用分析工具。另一方面,ANCF有限元很容易进行几何描述,并且可以有效地用于韧带,肌肉和软组织(LMST)的分析,如本文中以膝关节为例所示。在这项研究中,ANCF有限元用于定义股骨/胫骨刚体接触表面的几何形状。相同的ANCF有限元也用于模拟MCL和LCL韧带变形。在这项研究中使用了两种不同的接触方式来预测股骨/胫骨的接触力。弹性接触配方允许在接触点处穿透和分离,以及约束接触配方,其中非共形接触条件被施加为约束方程,结果,不允许在接触点处分离或穿透。对于这两种配方,接触面均以参量形式使用进入ANCF有限元几何描述的表面参数进行描述。建立了一组依赖于表面参数的非线性代数方程,并将其用于确定接触点的位置。这两个接触公式是在通用MBS算法中实现的,该算法允许对刚体和柔体动力学进行建模。

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