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Quantitative simulation of wave propagation in a human leg to support the ultrasonic non-invasive assessment of human bones

机译:人体腿部波传播的定量模拟,以支持对人体骨骼的超声非侵入性评估

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This paper presents a dedicated Finite Element approach for quantitative time-transient simulations of stress and pressure waves propagation in biological structures as human bones. The tool, starting from a magnetic resonance image (MRI) as the one of a human leg, builds a three-dimensional finite element (FE) mesh by converting voxels into elements. This step does not require any segmentation or further geometric interpretation of the tissue structure, only the mechanical properties have to be provided via Hounsfield (HU) number density mapping. The proposed tool improves upon the usually adopted models taking into account the irregular geometry of the bone as well as the soft tissues and their damping role, typically neglected. The tool code can handle models of hundred millions of elements in a standard PC desktop, exceeding thus capabilities of commercially available FEM codes. Here, an application on a human leg is proposed to show the potential of the proposed tool. The results of the time-transient simulations are next exploited to validate the use of guided waves models for the non invasive ultrasonic diagnosis of elongated bones. In particular, the recorded time-waveforms are analyzed via the 2D Fast Fourier Transform and the frequency-wavenumber energy content of the propagating waves is extracted. Such information is compared with the guided waves dispersion curves predicted, considering a representative cross-section of the tibia, via a Semi Analytical Finite Element (SAFE) formulation. Some final considerations on the comparison of the extracted and predicted dispersion curves close the paper.
机译:本文介绍了一种专用的有限元方法,用于定量时间瞬态模拟的压力和压力波在生物结构中传播作为人骨。从作为人腿之一的磁共振图像(MRI)开始的工具通过将体素转换为元件来构建三维有限元(FE)网。该步骤不需要组织结构的任何分段或进一步的几何解释,只能通过Hounsfield(Hu)数密度映射提供机械性能。所提出的工具改善了通常采用的模型考虑到骨骼的不规则几何形状以及软组织及其阻尼作用,通常被忽略。该工具代码可以处理标准PC桌面中的百万元素的型号,超过所以商业有限元码的功能。这里,提出了在人腿上的应用来展示所提出的工具的潜力。接下来利用时间瞬态模拟的结果,以验证用于植物的非侵入式超声波诊断的引导波模型的使用。特别地,通过2D快速傅里叶变换分析记录的时间波形,提取传播波的频率 - 波数能量内容。通过半分析有限元(安全)制剂,将这些信息与预测的引导波色散曲线预测的引导波分散曲线进行比较。关于提取和预测的分散曲线的比较关闭纸张的一些最终考虑因素。

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