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An anatomically based patient-specific finite element model of patella articulation: towards a diagnostic tool

机译:an骨关节解剖学基于患者的有限元模型:用于诊断工具

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A 3D anatomically based patient-specific finite element (FE) model of patello-femoral (PF) articulation is presented to analyse the main features of patella biomechanics, namely, patella tracking (kinematics), quadriceps extensor forces, surface contact and internal patella stresses. The generic geometries are a subset from the model database of the International Union of Physiological Sciences (IUPS) (http://www.physiome.org.nz) Physiome Project with soft tissue derived from the widely used visible human dataset, and the bones digitised from an anatomically accurate physical model with muscle attachment information. The models are customised to patient magnetic resonance images using a variant of free-form deformation, called host-mesh fitting. The continuum was solved using the governing equation of finite elasticity, with the multibody problem coupled through contact mechanics. Additional constraints such as tissue incompressibility are also imposed. Passive material properties are taken from the literature and implemented for deformable tissue with a non-linear micro-structurally based constitutive law. Bone and cartilage are implemented using a St-Venant Kirchoff model suitable for rigid body rotations. The surface fibre directions have been estimated from anatomy images of cadaver muscle dissections and active muscle contraction was based on a steady-state calcium-tension relation. The 3D continuum model of muscle, tendon and bone is compared with experimental results from the literature, and surgical simulations performed to illustrate its clinical assessment capabilities (a Maquet procedure for reducing patella stresses and a vastus lateralis release for a bipartite patella). Finally, the model limitations, issues and future improvements are discussed.
机译:提出了一种基于3D解剖学的patient骨-股骨(PF)关节的患者特定有限元(FE)模型,以分析o​​f骨生物力学的主要特征,即骨跟踪(运动学),股四头肌伸肌力,表面接触和internal骨内部应力。通用几何结构是国际生理科学联合会(IUPS)(http://www.physiome.org.nz)Physiome Project的模型数据库的子集,该项目具有从广泛使用的可见人类数据集中获取的软组织以及骨骼从具有肌肉附着信息的解剖学精确的物理模型中数字化。该模型使用称为宿主网格拟合的自由形式变形的变体针对患者的磁共振图像进行了定制。连续体使用有限弹性的控制方程求解,其中多体问题通过接触力学耦合。还施加了诸如组织不可压缩性的附加约束。被动材料属性取自文献,并通过基于非线性微结构的本构律对可变形组织实施。使用适合刚体旋转的St-Venant Kirchoff模型实现骨骼和软骨。表面纤维方向已经从尸体肌肉解剖的解剖图像中估计,并且主动肌肉收缩是基于稳态钙-张力关系。将肌肉,肌腱和骨骼的3D连续体模型与文献中的实验结果进行了比较,并进行了外科手术模拟以说明其临床评估能力(Maquet手术可减少Ma骨应力和双侧骨的股外侧肌释放)。最后,讨论了模型的局限性,问题和未来的改进。

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