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Finite element model of spinal hemiepiphysiodesis: Effect of contact conditions, initial conditions, and growth

机译:脊髓血管血管缺星有限元模型:接触条件,初始条件和生长的影响

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Growth modification is under investigation to treat pediatric spine deformities. A hemiepiphyseal staple construct has been shown to alter growth and create physeal structural gradients in an in vivo porcine model. A finite element model (FEM) of a motion segment with and without implant was developed based on preliminary experimental results of initial post-operative motion segment compressive properties. The nonlinear tangent stiffness determined from the model correlated well with the experiments for the native segment, whereas after addition of the implant, the model overestimated the stiffness. The current purpose was to determine the effect of implant-bone contact conditions and initial disc displacement conditions, include growth effects, and compare FEM and experimental results at each stage. A 3D FEM was developed from a CT scan of a porcine T7-T8 segment. The annulus was modeled as an incompressible anisotropic hyperelastic material, and the nucleus as an incompressible fluid. A CAD model of the implant was constructed. Load-displacement curves in compression were determined from a nonlinear analysis performed under different initial and bone-implant interface conditions. Contact conditions were a) perfect, b) friction of 0.1-0.3, or c) soft contact. Initial conditions were that implant insertion induced a) no change in stress or strain.in the disc, b) a 2deg angulation with a centrally located neutral axis and no residual stresses, and c) both stress and coronal plane displacement gradients. Growth modulation effects were added using a published linear relationship between compressive stress and growth rate. A 2 month PO time was simulated. Altering bone - implant surface contact conditions from perfect to either friction or soft contact decreased the stiffness, but all models remained stiffer than experimental results. An initial disc angulation without residual stress did not affect stiffness, whereas stiffness increased with an initial angle and compressive stress. The growth simulation results predicted 32% of control growth on the side ipsilateral to the implant and 81% on the contralateral side. Reductions in growth were similar in pattern, but overestimated, experimental histomorphometric changes.
机译:正在调查生长修改以治疗儿科脊柱畸形。已经显示出血管肌肌腱构建体在体内猪模型中改变生长并产生身体结构梯度。基于初始术后运动段压缩性能的初步实验结果,开发了具有和不植入的运动段的有限元模型(FEM)。从模型确定的非线性切线刚度与天然段的实验相关,而加入植入物后,模型高估了刚度。目前目的是确定植入骨接触条件和初始盘位移条件的影响,包括生长效应,并比较每个阶段的FEM和实验结果。从猪T7-T8段的CT扫描开发了3D FEM。将环形为作为不可压缩的各向异性高速材料和细胞核为不可压缩的流体建模。构建了植入物的CAD模型。从不同初始和骨植入界面条件下进行的非线性分析确定压缩中的负载 - 位移曲线。接触条件是A)完美,b)摩擦为0.1-0.3或c)软接触。初始条件是植入物插入诱导a)在盘,b)中没有变化,b)2deg角度,其中中心位于中性轴线,并且没有残留应力,以及c)两个应力和冠状平面位移梯度。使用抗压应力和生长速率之间的公开的线性关系添加生长调制效应。模拟了2个月的游戏时间。改变骨头植入表面接触条件从完美到摩擦或软接触的情况下降降低刚度,但所有型号仍然比实验结果更硬。没有残余应力的初始盘角度不会影响刚度,而刚度随着初始角度和压缩应力而增加。增长模拟结果将32%的控制增长预测到植入物的侧面,对侧侧的81%。在模式中减少成长,但高估,实验组织形态形状变化相似。

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