Explicit expressions for elastic constants of osteoporotic lamellar tissue and damage assessment using Hashin failure criterion

Raquel Megías Díaz, Ricardo Belda González, Ana Vercher Martínez, Eugenio Giner Maravilla
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Abstract

Osteoporosis is one of the most prevalent diseases in the last decades. The ageing of the population has led to a large increase in the number of people who suffer this musculoskeletal disease. For this reason, an early diagnosis of osteoporosis in order to improve bone fracture risk assessment is essential. To this end, efforts to enhance the knowledge in the elastic, post-yielding and fracture properties of bone are required.In this work, we have derived explicit equations to estimate the orthotropic elastic constants of lamellar tissue as a function of the porosity at tissue level (microporosity) and the bone mineral density, following the multiscale approach presented in [1]. Microporosity has been explicitly mod-elled in a range from 1% to 25% [2]. Two types of pores, ellipsoid and sphere-shaped, have been modelled. On the other side, we have obtained the elastic constants of lamellar tissue in a range of bone mineral density comprised from 0,653 g/cm3 to 1,50 g/cm3 [3]. A non-linear multivariable regression by means of the least square fitting has been performed and the explicit expressions for the elastic constants of lamellar tissue have been provided as a function of the volumetric bone mineral density and porosity.Moreover, independent quasi-static load cases are numerically simulated. Bone failure onset has been modeled by Hashin’s orthotropic failure criterion and damage evolution has been assessed through the material property degradation (MPD) method. Strength limits of lamellar tissue have been inferred from Ascenzi and Bonucci [4] and Giner et al. [5]. Results reveal that failure onset is mainly due to the tension in the transversal direction of the mineralized collagen bundles.
骨质疏松层状组织弹性常数的显式表达式及哈辛破坏准则损伤评估
骨质疏松症是近几十年来最普遍的疾病之一。人口老龄化导致患有这种肌肉骨骼疾病的人数大幅增加。因此,骨质疏松症的早期诊断,以提高骨折风险评估是至关重要的。为此,需要努力提高对骨的弹性、后屈服和断裂特性的认识。在这项工作中,我们推导了显式方程来估计板层组织的正交各向异性弹性常数作为组织水平孔隙度(微孔隙度)和骨矿物质密度的函数,遵循[1]中提出的多尺度方法。微孔隙度的明确模拟范围为1%至25%[2]。模拟了两种类型的孔隙,椭球型和球形。另一方面,我们获得了骨矿物质密度范围为0,653 g/cm3至1,50 g/cm3的板层组织弹性常数[3]。用最小二乘拟合方法进行了非线性多变量回归,并给出了板层组织弹性常数作为体积骨矿物质密度和孔隙率的函数的显式表达式。此外,还对独立的准静态载荷情况进行了数值模拟。骨衰竭的开始采用Hashin的正交各向异性破坏准则进行建模,并通过材料性能退化(MPD)方法评估损伤演变。板层组织的强度极限由Ascenzi和Bonucci[4]以及Giner等[5]推断。结果表明,失效的发生主要是由于矿化胶原束的横向张力引起的。
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