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Simulation of acoustic guided wave propagation in cortical bone using a semi-analytical finite element method

机译:使用半分析有限元法测定皮质骨中声波传播的仿真

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Axial transmission techniques have been extensively studied for cortical bone quality assessment. However, the modeling of ultrasonic guided waves propagation in such a complex medium remains challenging. The aim of this paper is to develop a semi-analytical finite element method to simulate the propagation of guided waves in an irregular, multi-layer, and heterogeneous bone cross-section modeled with anisotropic and viscoelastic material properties. The accuracy of the simulations was verified against conventional time-domain three-dimensional finite element. The method was applied in the context of axial transmission in bone to investigate the feasibility of first arrival signal (FAS) to monitor degradation of intracortical properties at low frequency. Different physiopathological conditions for the intracortical region, varying from healthy to osteoporotic, were monitored through FAS velocity using a 10-cycle tone burst excitation centered at 32.5 kHz. The results show that the variation in FAS velocity is mainly associated with four of the eight modes supported by the waveguide, varying with velocity values between 550 and 700 m/s along the different scenarios. Furthermore, the FAS velocity is shown to be associated with the group velocity of the mode with the highest relative amplitude contribution at each studied scenario. However, because of the evolution of the mode with the highest contribution, the FAS velocity is shown to be limited to discriminate intracortical bone properties at low frequency. (C) 2017 Acoustical Society of America.
机译:对皮质骨质质量评估进行了广泛研究了轴向传输技术。然而,在这种复合介质中的超声波引导波的建模仍然是挑战性。本文的目的是开发一种半分析有限元方法,以模拟具有各向异性和粘弹性材料特性建模的不规则,多层和异质骨横截面的引导波的传播。针对传统的时域三维有限元件验证了模拟的准确性。该方法应用于骨轴向透射的背景下,研究了第一到达信号(FAS)的可行性,以监测低频下的内耳性能的劣化。通过使用以32.5kHz为中心的10周期色调突发激发,通过Fas速度监测来自健康至骨质疏松症的骨质疏松区的不同的物理病理学条件。结果表明,FAS速度的变化主要与波导支撑的八种模式中的四种相关联,沿着不同场景的550到700米/秒之间变化。此外,示出了FAS速度与每个研究方案的相对幅度贡献的模式的群体速度相关联。然而,由于具有最高贡献的模式的进化,所示的Fas速度被示出为限于在低频下区分内胆性骨骼性质。 (c)2017年声学社会。

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