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首页> 外文期刊>Biomechanics and modeling in mechanobiology >Comparison of trabecular bone behavior in core and whole bone samples using high-resolution modeling of a vertebral body
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Comparison of trabecular bone behavior in core and whole bone samples using high-resolution modeling of a vertebral body

机译:使用椎体的高分辨率建模比较核心和整个骨骼样品中的小梁骨行为

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摘要

Computational analysis of trabecular bone normally involves the modeling of (experimental tests of) cored samples. However, the lack of constraint on the sides of the extracted trabecular bone samples limits the information that can be inferred regarding true in situ behavior. Here, the element-by-element voxel-based finite element method was applied via, a custom-written software suite (FEEBE), to a 72 μm resolution model of an ovine vertebra. The difference between the apparent modulus of eight concentric core cylinders when modeled as part of the whole bone (containing 84 × 106 degrees of freedom) and independent of the whole bonewas investigated. The results showed that cored trabecular bone apparent modulus depended significantly on the core diameter when modeled as an extracted core (r~2 = 0.975) and as part of a whole bone (r~2 = 0.986). The cause of this resultwas separated into the side-artifact effect and bone volume fraction (BV/TV) effect. For the independently modeled cores, the apparent modulus of an inner core region of interest varied with increasing thickness of the outer annulus. This was attributed to the side-artifact effect, given that the BV/TV of the core region was constant. Within the whole trabecular structure, the side artifact was eliminated as the entire bone structurewas modeled. However, a BV/TV effect influenced the apparent modulus depending on the size of the core selected for determining apparent modulus. Changing the size of the core varied the overall BV/TV of the core, and this significantly (r~2 =0.999) influences the apparent modulus. Therefore, determining a 'true' apparent modulus for trabecular bone was not achievable. The independently modeled cores consistently under-predict the in vivo apparent modulus. It is recommended that if a 'true' apparent modulus is required, the BV/TV at which it is required needs to be first determined. Apparent modeling of entire bones at microscale resolution allowed regions of lowand high tissue strains to be identified, consistent with patterns of trabecular bone remodeling and resorption reported in literature. The basivertebral vein cavity underwent the highest strains within the entire vertebral body, suggesting that failure might initiate here, despite containing visibly thicker struts and plate trabeculae. Although computationally expensive, analysis of the entire vertebral body provided a full picture of in situ trabecular bone deformation.
机译:小梁骨的计算分析通常涉及对有芯样品进行建模(实验测试)。然而,在所提取的小梁骨样品的侧面上缺乏约束限制了可以推断出的有关真实原位行为的信息。在这里,通过逐个编写的软件套件(FEEBE)将基于逐个元素的有限元方法应用于绵羊椎骨的72μm分辨率模型。研究了将八个同心芯圆柱体建模为整个骨骼的一部分(包含84×106自由度)且与整个骨骼无关的视在模量之间的差异。结果表明,当建模为提取核心(r〜2 = 0.975)和作为整个骨骼的一部分(r〜2 = 0.986)时,有芯小梁骨的表观模量显着取决于芯直径。该结果的原因分为副假象效应和骨体积分数(BV / TV)效应。对于独立建模的岩心,感兴趣的岩心区域的表观模量随外环厚度的增加而变化。假定核心区域的BV / TV恒定,则这归因于伪影效应。在整个小梁结构内,由于对整个骨骼结构进行了建模,因此消除了侧面伪影。但是,BV / TV效应会影响视在模量,具体取决于为确定视在模量而选择的磁芯尺寸。改变铁芯的尺寸会改变铁芯的整体BV / TV,而这(r〜2 = 0.999)会明显影响表观模量。因此,无法确定小梁骨的“真实”表观模量。独立建模的核心始终低估了体内表观模量。建议如果需要“真实”视在模量,则需要首先确定所需的BV / TV。以微米级分辨率对整个骨骼进行表观建模,可以识别低和高组织应变的区域,这与文献中报道的小梁骨重塑和吸收模式一致。基底椎静脉腔在整个椎体中承受的应变最高,这表明尽管包含明显较粗的支撑杆和板状小梁,但此处可能会开始失败。尽管计算量很大,但对整个椎体的分析提供了原位小梁骨变形的全貌。

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