首页> 外文会议>International Mechanical Engineering Congress and Exposition 2007 >EFFECT OF BONE TUMOR AND OSTEOPOROSIS ON MECHANICAL PROPERTIES OF BONE AND BONE TISSUE PROPERTIES: A FINITE ELEMENT STUDY
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EFFECT OF BONE TUMOR AND OSTEOPOROSIS ON MECHANICAL PROPERTIES OF BONE AND BONE TISSUE PROPERTIES: A FINITE ELEMENT STUDY

机译:骨肿瘤和骨质疏松对骨力学性能和骨组织特性的影响:有限元研究

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This research is aimed to study the variations in the bio-mechanical behavior of bone and bone tissues with osteoporosis and bone tumors. Osteoporosis and bone tumors reduce the mechanical strength of bone, which creates a greater risk of fracture. In the United States alone, ten million individuals, eight million of whom are women, are estimated to already have osteoporosis, and almost 34 million more are estimated to have low bone mass (osteopenia) placing them at increased risk for osteoporosis. World Health Organization defines osteopenia, as a bone density between one and two and a half standard deviations (SD) below the bone density of a normal young adult. (Osteoporosis is defined as 2.5 SD or more below that reference point.). Together, osteoporosis and osteopenia are expected to affect an estimated 52 million women and men age 50 and older by 2010, and 61 million by 2020. The current medical cost of osteoporosis total is nearly about S18 billion in the U.S. each year. There is a dearth of literature that addresses the effects of osteoporosis on bone tissue properties. Furthermore, there are few studies published related to the effect of bone tumors such as Adamantinoma of long bones, Aneurysmal bone cyst, Hemangioma and others on overall behavior of bone. To understand the variations in bio-mechanical properties of internal tissues of bone with osteoporosis and bone tumor, a 2D finite element (FE) model of bone is developed using ANSYS 9.0~R (ANSYS Inc., Canonsburg, PA). Trabecular bone is modeled using hexagonal and voronoi cellular structure. This finite element model is subjected to change in BVF (bone volume fraction) and bone architecture caused by osteoporosis. The bone tumor is modeled as finer multi-cellular structure and the effects of its size, location, and property variation of tumor on overall bone behavior are studied. Results from this analysis and comparative data are used to determine behavior of bone and its tissue over different stage of osteoporosis and bone tumor. Results indicate that both bone tumor and osteoporosis significantly change the mechanical properties of the bone. The results show that osteoporosis increases the bone tissue stiffness significantly as BVF reduces. Bone tissue stiffness is found to increase by 80 percent with nearly 55 percent reduction of BVF. The results and methods developed in this research can be implemented to monitor variation in bio-mechanical properties of bone up to tissue level during medication or to determine type and time for need of external support such as bracing.
机译:这项研究旨在研究骨质疏松症和骨肿瘤的骨骼和骨组织的生物力学行为的变化。骨质疏松症和骨肿瘤会降低骨骼的机械强度,这会增加骨折的风险。仅在美国,就估计有一千万个人,其中八百万是女性,已经患有骨质疏松症,并且估计还有近三千四百万的骨量低(骨质减少症),使他们患骨质疏松症的风险增加。世界卫生组织将骨质疏松症定义为比正常年轻人的骨密度低一到两个半标准偏差(SD)的骨密度。 (骨质疏松症定义为低于该参考点2.5 SD或更多。)。预计到2010年,骨质疏松症和骨质疏松症将影响约5200万男女,年龄在50岁及以上,到2020年将达到6100万。目前,美国每年骨质疏松症的医疗费用总计近180亿新元。缺乏关于骨质疏松症对骨组织特性的影响的文献。此外,几乎没有发表过有关骨肿瘤如长骨精金瘤,动脉瘤性骨囊肿,血管瘤等对骨总体行为的影响的研究。为了了解患有骨质疏松症和骨肿瘤的骨骼内部组织的生物力学特性的变化,使用ANSYS 9.0〜R(宾夕法尼亚州卡农斯堡的ANSYS Inc.)开发了骨骼的2D有限元(FE)模型。使用六边形和voronoi细胞结构对小梁骨进行建模。由于骨质疏松症,该有限元模型会发生BVF(骨体积分数)和骨骼结构的变化。将骨肿瘤建模为更精细的多细胞结构,并研究其大小,位置和肿瘤特性变化对总体骨行为的影响。分析和比较数据得出的结果可用于确定骨质疏松症和骨肿瘤不同阶段的骨骼及其组织的行为。结果表明,骨肿瘤和骨质疏松症均显着改变骨骼的机械性能。结果表明,骨质疏松症随着BVF的降低而显着增加骨组织的硬度。发现骨骼组织刚度增加了80%,BVF减少了近55%。该研究中开发的结果和方法可用于监测药物治疗期间直至组织水平的骨生物力学特性变化,或确定需要外部支撑(例如支撑)的类型和时间。

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