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In-silico evaluation of cortical porosity by tangential axial transmission

机译:切向轴向透射在硅中评估皮质孔隙度

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The role of quantitative ultrasound as a diagnostic and monitoring tool in bone pathologies has been widely investigated both experimentally and numerically. Recently, the numerical studies have focused on the exploitation of high-resolution imaging data of bone's microarchitecture in order to develop more realistic computational models of osteoporotic bones. In this work, we present numerical simulations of ultrasonic wave propagation in two-dimensional computational models of cortical bone to investigate the effect of cortical porosity and the occurrence of non-refilled basic multicellular unit (BMU) on the propagation of the first arriving signal (FAS) velocity. Calculations are conducted in the tangential direction and the central excitation frequencies of 0.5 and 1 MHz are used. It was shown that the FAS velocity can detect changes in cortical porosity and capture the occurrence of BMU, indicating a potential region for the future evolution of osteoporosis. Also, the examined frequencies were found to be sensitive to changes in the distribution of normal and large pores.
机译:定量超声在骨病理学中作为诊断和监测工具的作用已在实验和数值上得到广泛研究。最近,数值研究集中在利用骨骼的微体系结构的高分辨率成像数据上,以便开发出更现实的骨质疏松性骨计算模型。在这项工作中,我们在皮质骨的二维计算模型中提供了超声波传播的数值模拟,以研究皮质孔隙率和未填充的基本多细胞单元(BMU)的出现对第一个到达信号的传播的影响( FAS)速度。在切线方向上进行计算,并使用0.5和1 MHz的中心激励频率。结果表明,FAS速度可以检测出皮质孔隙率的变化并捕获BMU的发生,表明骨质疏松症未来可能发展。另外,发现检查的频率对正常和大孔分布的变化敏感。

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