Design and analysis of infill density effects on interbody fusion cage construct based on finite element analysis

N. Salleh, M. Mazlan, N. Abdullah, Ida Laila Ahmad, A. H. Abdullah, M. H. Jalil, H. Takano, Nur Dalilah Diyana Nordin
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Abstract

Degenerative Disc Disease is a condition of the spine when the intervertebral disc begins to collapse. This disease occurs in the human spine, especially in the lumbar spine, because the primary function of the lumbar spine is to support the weight of the body. There are many treatments for this disease, and one of the treatment methods is Posterior Lumbar Interbody Fusion (PLIF) surgery. There are few implications of the PLIF surgery, such as cage subsidence, cage failure, cage migration, and highly concentrated stress effect on the cage. The aim of the study was to develop an interbody cage that can be implanted into the spine and reduce the post-operative effects using the Finite Element Analysis (FEA) approach. In this study, various infill densities of the interbody cage were designed using Solidworks software and analyzed using Ansys software. Polylactic Acid (PLA) was assigned as a cage material. The cage was implanted between L4 and L5 to create the three dimensional (3D) model, in which the spine model was developed from extracted CT scan images using 3D Slicer software. The model was analyzed based on von Mises stress and maximum principal stress compared with the yield strength and ultimate tensile strength of the material, respectively. The 3D model was loaded with flexion, extension, axial rotation, lateral bending and compression to mimic the physiological motions of the spine. The analysis showed that the interbody cage with 50% infill density has been identified as the most appropriate design according to the acceptable range of stresses generated, fastest estimated printing time, and required the least amount of printing material.
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基于有限元分析的填充密度对椎间融合器结构的影响设计与分析
椎间盘退行性疾病是指椎间盘开始塌陷时脊柱的一种状况。本病多见于人体脊柱,尤其是腰椎,因为腰椎的首要功能是支撑身体的重量。这种疾病有许多治疗方法,其中一种治疗方法是后路腰椎椎体间融合术(PLIF)。PLIF手术的影响很少,如保持器下沉、保持器失效、保持器迁移和高度集中的应力对保持器的影响。该研究的目的是开发一种可以植入脊柱的椎间固定器,并使用有限元分析(FEA)方法减少术后影响。本研究利用Solidworks软件设计了体间笼的不同填充密度,并利用Ansys软件进行了分析。聚乳酸(PLA)作为笼型材料。在L4和L5之间植入cage,建立三维(3D)模型,利用3D Slicer软件从提取的CT扫描图像建立脊柱模型。基于von Mises应力和最大主应力分别与材料屈服强度和极限抗拉强度进行对比分析。三维模型加载了屈曲、伸展、轴向旋转、侧向弯曲和压缩来模拟脊柱的生理运动。分析表明,根据产生的应力可接受范围、预计打印时间最快、所需打印材料最少,确定填充密度为50%的体间保持架是最合适的设计。
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