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首页> 外文期刊>Journal of Biomechanics >Kinematic simulation of fracture reduction and bone deformity correction under unilateral external fixation.
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Kinematic simulation of fracture reduction and bone deformity correction under unilateral external fixation.

机译:单侧外固定下骨折复位和骨畸形矫正的运动学模拟。

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摘要

Combined kinematic analysis and graphic models of two unilateral external fixators are presented to simulate and visualize the correction of bone fracture deformities through systematic adjustments of the fixator joints. The models were developed as rigid linkage systems, and the analysis utilized the 4x4 transformation matrices and the kinematic chain theory to obtain the necessary rotations and translations at each joint of the fixator to correct bone deformities at the fracture site. Three-dimensional malalignments with fracture gaps were simulated to correct the deformities. Due to the redundant pair variables in the fixator joints and other problems in obtaining unique solutions, an optimization technique was used to solve the governing linkage loop equations. For each adjustment solution, the bone correction paths were infinite but a unique and optimal reduction path was obtained by applying corrections to all joints simultaneously and in small increments. When the deformity exceeded a certain range, no admissible solution could be obtained, partially due to the limitation of the unilateral fixator configuration and partially due to the restricted joint rotation and translation in the fixator design. The present models and analysis technique can be used to investigate a fixator's adjustability to correct a 3-D bone deformity at a fracture or lengthening site facilitating patient care planning and medical personnel training.
机译:结合运动学分析和两个单侧外固定器的图形模型,通过系统地调整固定器关节来模拟和可视化骨折畸形的矫正。该模型被开发为刚性连杆系统,并且分析利用4x4变换矩阵和运动链理论在固定器的每个关节处获得必要的旋转和平移,以校正骨折部位的骨变形。模拟具有裂缝间隙的三维错位以校正畸形。由于固定器关节中的冗余变量对以及获得唯一解的其他问题,因此使用了一种优化技术来求解控制连杆环方程。对于每种调整方案,骨骼矫正路径是无限的,但通过同时以较小的增量对所有关节进行矫正,可以获得唯一且最佳的减少路径。当变形超过某个范围时,部分由于单侧固定器配置的限制,部分由于固定器设计中的关节旋转和平移受到限制,因此无法获得可接受的解决方案。本模型和分析技术可用于研究固定器的可调节性,以纠正骨折或延长部位的3-D骨变形,从而有利于患者护理计划和医务人员培训。

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