Velocity and attenuation of shear waves in the phantom of a muscle–soft tissue matrix with embedded stretched fibers


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Abstract

We develop a theory of the elasticity moduli and dissipative properties of a composite material: a phantom simulating muscle tissue anisotropy. The model used in the experiments was made of a waterlike polymer with embedded elastic filaments imitating muscle fiber. In contrast to the earlier developed phenomenological theory of the anisotropic properties of muscle tissue, here we obtain the relationship of the moduli with characteristic sizes and moduli making up the composite. We introduce the effective elasticity moduli and viscosity tensor components, which depend on stretching of the fibers. We measure the propagation velocity of shear waves and the shear viscosity of the model for regulated tension. Waves were excited by pulsed radiation pressure generated by modulated focused ultrasound. We show that with increased stretching of fibers imitating muscle contraction, an increase in both elasticity and viscosity takes place, and this effect depends on the wave propagation direction. The results of theoretical and experimental studies support our hypothesis on the protective function of stretched skeletal muscle, which protects bones and joints from trauma.

About the authors

O. V. Rudenko

Physics Faculty; Nizhny Novgorod State University; Prokhorov General Physics Institute; Schmidt Institute of Physics of the Earth

Author for correspondence.
Email: rudenko@acs366.phys.msu.ru
Russian Federation, Moscow, 119991; Nizhny Novgorod, 603950; Moscow, 119991; Moscow, 123242

S. N. Tsyuryupa

Artann Laboratories Inc.

Email: rudenko@acs366.phys.msu.ru
United States, Trenton, NJ, 08618

A. P. Sarvazyan

Artann Laboratories Inc.

Email: rudenko@acs366.phys.msu.ru
United States, Trenton, NJ, 08618

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