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松质骨材料弹性常数的测量:使用1GHz声学显微镜的微观力学分析研究

Measurement of material elastic constants of trabecular bone: a micromechanical analytic study using a 1 GHz acoustic microscope.

作者信息

Jørgensen C S, Kundu T

机构信息

SAM laboratory, Institute of Experimental Clinical Research, Aarhus University, Denmark.

出版信息

J Orthop Res. 2002 Jan;20(1):151-8. doi: 10.1016/S0736-0266(01)00061-4.

Abstract

The propagation speed (C) of surface acoustic waves (SAW), e.g. Rayleigh (R-waves) and longitudinal lateral waves (L-waves), the latter being the surface manifestation of the longitudinal waves, strongly reflect mechanical properties of materials. In view of an increasing interest in ultrasonic methodology in the field of bone biomechanics, we tested the hypothesis that both R- and L-waves can be excited in trabecular bone using an acoustic microscope at 1 GHz and that their speeds (C(R) and C(L)) can be extracted from V(z)-curves, i.e. plots of lens output voltage as a function of the lens focal point position with respect to the specimen surface. In accordance with V(z)-curves theoretically synthesized on the basis of incident field theory, experimental curves for canine femoral trabecular bone showed evidence of both R- and L-waves in almost all regions of recording. The measured CR ranged between 1.93 and 2.07 km/s (mean +/- SD.: 2.00=0.06 km/s) and the C(L) ranged between 2.33 and 4.33 km/s (3.37+/-0.61 km/s). Knowledge of both speeds allowed computation of a number of material constants by means of simple theory of elasticity and assumptions of the material density. We found values of Poisson ratio (v) ranging from 0.14 to 0.32 (0.23+/-0.07). Young's modulus (E) from 15 to 22.8 GPa (19.9+/-2.5 GPa) and the shear modulus (G) from 7.6 to 8.9 GPa (8.4+/-0.5 GPa). Anisotropy in the trabecular bone material was clearly detected at the micrometer level. In conclusion, the V(z)-curve method was successfully used to determine the distribution of material elastic constants of trabecular bone with micrometer resolution.

摘要

表面声波(SAW),如瑞利波(R波)和纵向横向波(L波,后者是纵波的表面表现形式)的传播速度(C)强烈反映了材料的力学性能。鉴于骨生物力学领域对超声方法的兴趣日益增加,我们测试了以下假设:使用1GHz的声学显微镜可以在松质骨中激发R波和L波,并且它们的速度(C(R)和C(L))可以从V(z)曲线中提取,即透镜输出电压作为透镜焦点相对于样品表面位置的函数的曲线图。根据基于入射场理论理论合成的V(z)曲线,犬股骨松质骨的实验曲线显示在几乎所有记录区域都有R波和L波的证据。测得的CR范围为1.93至2.07km/s(平均值±标准差:2.00 = 0.06km/s),C(L)范围为2.33至4.33km/s(3.37±0.61km/s)。知道这两种速度后,可以通过简单的弹性理论和材料密度假设来计算一些材料常数。我们发现泊松比(v)的值范围为0.14至0.32(0.23±0.07)。杨氏模量(E)为15至22.8GPa(19.9±2.5GPa),剪切模量(G)为7.6至8.9GPa(8.4±0.5GPa)。在微米水平上清楚地检测到松质骨材料中的各向异性。总之,V(z)曲线方法成功地用于以微米分辨率确定松质骨材料弹性常数的分布。

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