Chan B, Donzelli P S, Spilker R L
Department of Mechanical Engineering, Aeronautical Engineering, and Mechanics, Rensselaer Polytechnic Institute, Troy, NY, USA.
Ann Biomed Eng. 2000 Jun;28(6):589-97. doi: 10.1114/1.1305529.
The fluid viscosity term of the fluid phase constitutive equation and the interface boundary conditions between biphasic, solid and fluid domains have been incorporated into a mixed-penalty finite element formulation of the linear biphasic theory for hydrated soft tissue. The finite element code can now model a single-phase viscous incompressible fluid, or a single-phase elastic solid, as limiting cases of a biphasic material. Interface boundary conditions allow the solution of problems involving combinations of biphasic, fluid and solid regions. To incorporate these conditions, the volume-weighted mixture velocity is introduced as a degree of freedom at interface nodes so that the kinematic continuity conditions are satisfied by conventional finite element assembly techniques. Results comparing our numerical method with an independent, analytic solution for the problem of Couette flow over rigid and deformable porous biphasic layers show that the finite element code accurately predicts the viscous fluid flows and deformation in the porous biphasic region. Thus, the analysis can be used to model the interface between synovial fluid and articular cartilage in diarthrodial joints. This is an important step toward modeling and understanding the mechanisms of joint lubrication and another step toward fully modeling the in vivo behavior of a diarthrodial joint.
流体相本构方程中的流体粘度项以及双相、固体和流体域之间的界面边界条件已被纳入用于水合软组织的线性双相理论的混合罚有限元公式中。有限元代码现在可以将单相粘性不可压缩流体或单相弹性固体作为双相材料的极限情况进行建模。界面边界条件允许求解涉及双相、流体和固体区域组合的问题。为了纳入这些条件,引入体积加权混合速度作为界面节点处的自由度,以便通过传统的有限元组装技术满足运动学连续性条件。将我们的数值方法与刚性和可变形多孔双相层上的库埃特流问题的独立解析解进行比较的结果表明,有限元代码能够准确预测多孔双相区域中的粘性流体流动和变形。因此,该分析可用于模拟滑膜关节中滑液与关节软骨之间的界面。这是朝着建模和理解关节润滑机制迈出的重要一步,也是朝着全面模拟滑膜关节体内行为迈出的又一步。