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迈向基于声学模型的孔隙弹性成像方法:I. 理论基础。

Towards an acoustic model-based poroelastic imaging method: I. Theoretical foundation.

作者信息

Berry Gearóid P, Bamber Jeffrey C, Armstrong Cecil G, Miller Naomi R, Barbone Paul E

机构信息

Joint Department of Physics, Institute of Cancer Research and Royal Marsden NHS Foundation Trust, Sutton, Surrey, UK.

出版信息

Ultrasound Med Biol. 2006 Apr;32(4):547-67. doi: 10.1016/j.ultrasmedbio.2006.01.003.

Abstract

The ultrasonic measurement and imaging of tissue elasticity is currently under wide investigation and development as a clinical tool for the assessment of a broad range of diseases, but little account in this field has yet been taken of the fact that soft tissue is porous and contains mobile fluid. The ability to squeeze fluid out of tissue may have implications for conventional elasticity imaging, and may present opportunities for new investigative tools. When a homogeneous, isotropic, fluid-saturated poroelastic material with a linearly elastic solid phase and incompressible solid and fluid constituents is subjected to stress, the behaviour of the induced internal strain field is influenced by three material constants: the Young's modulus (E(s)) and Poisson's ratio (nu(s)) of the solid matrix and the permeability (k) of the solid matrix to the pore fluid. New analytical expressions were derived and used to model the time-dependent behaviour of the strain field inside simulated homogeneous cylindrical samples of such a poroelastic material undergoing sustained unconfined compression. A model-based reconstruction technique was developed to produce images of parameters related to the poroelastic material constants (E(s), nu(s), k) from a comparison of the measured and predicted time-dependent spatially varying radial strain. Tests of the method using simulated noisy strain data showed that it is capable of producing three unique parametric images: an image of the Poisson's ratio of the solid matrix, an image of the axial strain (which was not time-dependent subsequent to the application of the compression) and an image representing the product of the aggregate modulus E(s)(1-nu(s))/(1+nu(s))(1-2nu(s)) of the solid matrix and the permeability of the solid matrix to the pore fluid. The analytical expressions were further used to numerically validate a finite element model and to clarify previous work on poroelastography.

摘要

组织弹性的超声测量与成像作为一种用于评估多种疾病的临床工具,目前正在广泛研究和开发中,但该领域尚未充分考虑软组织具有孔隙且包含可流动液体这一事实。将液体从组织中挤出的能力可能会对传统弹性成像产生影响,并且可能为新的研究工具带来机遇。当一种具有线性弹性固相、不可压缩的固体和流体成分的均匀、各向同性、流体饱和的多孔弹性材料受到应力作用时,所诱导的内部应变场的行为受三个材料常数影响:固体基质的杨氏模量(E(s))、泊松比(nu(s))以及固体基质对孔隙流体的渗透率(k)。推导了新的解析表达式,并用于模拟这种多孔弹性材料的均匀圆柱形样品在持续无侧限压缩下内部应变场的时间依赖性行为。开发了一种基于模型的重建技术,通过比较测量的和预测的随时间变化的空间变化径向应变,生成与多孔弹性材料常数(E(s)、nu(s)、k)相关的参数图像。使用模拟噪声应变数据对该方法进行测试表明,它能够生成三张独特的参数图像:固体基质泊松比的图像、轴向应变的图像(在施加压缩后不随时间变化)以及一张表示固体基质的总模量E(s)(1 - nu(s))/(1 + nu(s))(1 - 2nu(s))与固体基质对孔隙流体渗透率乘积的图像。这些解析表达式还进一步用于对有限元模型进行数值验证,并阐明先前关于多孔弹性成像的工作。

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