Guan Tianmin, Zhang Yufang, Anwar Adeel, Zhang Yufen, Wang Lina
School of Mechanical Engineering, Dalian Jiaotong University, Dalian, China.
School of Orthopedic Surgery, The Second Affiliated Hospital, Dalian Medical University, Dalian, China.
Front Bioeng Biotechnol. 2020 Aug 13;8:963. doi: 10.3389/fbioe.2020.00963. eCollection 2020.
In this study we have considered the three dimensional corrective forces for correction of scoliosis by using a patient specific finite element model.
An objective function of corrective forces in three-dimensional space was defined. Computed tomography images were used to reconstruct three dimensional model of scoliotic trunk. Computer aided engineering software Abaqus was used to establish finite element model of deformed spine and its biomechanical characteristics were analyzed. By adjusting magnitude and position of corrective forces, objective function was minimized to achieve best orthopedic effect. The proposed corrective conditions were divided into three groups: (1) thoracic deformity; (2) lumbar deformity; (3) both thoracic and lumbar deformities were considered.
In all three cases, the objective function was reduced by 58, 52, and 63%, respectively. The best correction forces point was located on convex side of maximum displacement of vertebral body.
Using minimum objective function method, spinal deformity in three-dimensional space can be sufficiently reduced. This study provides scientific basis for design of a new corrective brace for treatment of scoliosis.
在本研究中,我们通过使用患者特异性有限元模型来考虑用于矫正脊柱侧弯的三维矫正力。
定义了三维空间中矫正力的目标函数。使用计算机断层扫描图像重建脊柱侧弯躯干的三维模型。利用计算机辅助工程软件Abaqus建立变形脊柱的有限元模型,并分析其生物力学特性。通过调整矫正力的大小和位置,使目标函数最小化以实现最佳矫形效果。所提出的矫正条件分为三组:(1)胸椎畸形;(2)腰椎畸形;(3)同时考虑胸椎和腰椎畸形。
在所有三种情况下,目标函数分别降低了58%、52%和63%。最佳矫正力点位于椎体最大位移的凸侧。
使用最小目标函数法,三维空间中的脊柱畸形可得到充分减少。本研究为设计一种新型脊柱侧弯矫正支具提供了科学依据。