Measuring the linear and nonlinear elastic properties of brain tissue with shear waves and inverse analysis
arXiv:2009.00051 · doi:10.1007/s10237-015-0658-0
Abstract
We use supersonic shear wave imaging (SSI) technique to measure not only the linear but also the nonlinear elastic properties of brain matter. Here, we tested six porcine brains ex vivo and measured the velocities of the plane shear waves induced by acoustic radiation force at different states of pre-deformation when the ultrasonic probe is pushed into the soft tissue. We relied on an inverse method based on the theory governing the propagation of small-amplitude acoustic waves in deformed solids to interpret the experimental data. We found that, depending on the subjects, the resulting initial shear modulus mu0 varies from 1.8 to 3.2 kPa, the stiffening parameter b of the hyperelastic Demiray-Fung model from 0.13 to 0.73, and the third- (A) and fourth-order (D) constants of weakly nonlinear elasticity from -1.3 to -20.6 kPa and from 3.1 to 8.7 kPa, respectively. Paired t-test performed on the experimental results of the left and right lobes of the brain shows no significant difference. These values are in line with those reported in the literature on brain tissue, indicating that the SSI method, combined to the inverse analysis, is an efficient and powerful tool for the mechanical characterization of brain tissue, which is of great importance for computer simulation of traumatic brain injury and virtual neurosurgery.
References in corpus (6)
- Mechanical Characterization of Brain Tissue in Compression at Dynamic Strain Rates
- Mechanical characterization of brain tissue in simple shear at dynamic strain rates
- On the third- and fourth-order constants of incompressible isotropic elasticity
- Onset of Non-Linearity in the Elastic Bending of Blocks
- Third- and fourth-order constants of incompressible soft solids and the acousto-elastic effect
- Third- and fourth-order elasticity of biological soft tissues
Cited by in corpus (5)
- Extreme softness of brain matter in simple shear
- Elastic Cherenkov effects in transversely isotropic soft materials-I: Theoretical analysis, simulations and inverse method
- Generalization of the Zabolotskaya equation to all incompressible isotropic elastic solids
- Shear shock formation in incompressible viscoelastic solids
- Computation of viscoelastic shear shock waves using finite volume schemes with artificial compressibility