In this paper, an analytical study is made for the dynamic behavior of human brain tissue under transient loading. In this analytical model the Mooney-Rivlin constitutive law is coupled with visco-elastic constitutive equations to take into account both the nonlinear and time-dependent mechanical behavior of brain tissue. Five ordinary differential equations representing the relationships of five main parameters (radial stress, circumferential stress, radial strain, circumferential strain, and particle velocity) are obtained by using the characteristic method to transform five partial differential equations (two continuity equations, one motion equation, and two constitutive equations). Analytical expressions of the attenuation properties f...
Finite element (FE) models of the human head have been used extensively to assess engineering respon...
Mechanics are increasingly recognized to play an important role in modulating brain form and functio...
Finite Element (FE) head models are often used to understand mechanical response of the head and its...
To develop protective measures for crash situations, an accurate assessment of injury risk is requir...
Mechanical characterization of brain tissue at high loading velocities is particularly important for...
A method is presented for determining the dynamic shear behaviour of brain tissue using a rotational...
In this dissertation, theoretical, computational, and experimental methodologies are introduced to d...
A method is presented for determining the dynamic shear behaviour of brain tissue using a rota-tiona...
The non-linear mechanical behaviour of porcine brain tissue in different deformation modes is determ...
The aim of this work was to assess the numerous approaches to structural and material modeling of br...
The non-linear mechanical behaviour of porcine brain tissue in large shear deformations is determine...
A biomechanical model for traumatic brain injury and soft tissue damage is presented. A variational ...
This study investigates the propagation of shock waves and self-preserving waves in soft tissues suc...
Conference paperMechanical characterization of brain tissue at high loading velocities is particular...
Finite element (FE) models of the human head have been used extensively to assess engineering respon...
Mechanics are increasingly recognized to play an important role in modulating brain form and functio...
Finite Element (FE) head models are often used to understand mechanical response of the head and its...
To develop protective measures for crash situations, an accurate assessment of injury risk is requir...
Mechanical characterization of brain tissue at high loading velocities is particularly important for...
A method is presented for determining the dynamic shear behaviour of brain tissue using a rotational...
In this dissertation, theoretical, computational, and experimental methodologies are introduced to d...
A method is presented for determining the dynamic shear behaviour of brain tissue using a rota-tiona...
The non-linear mechanical behaviour of porcine brain tissue in different deformation modes is determ...
The aim of this work was to assess the numerous approaches to structural and material modeling of br...
The non-linear mechanical behaviour of porcine brain tissue in large shear deformations is determine...
A biomechanical model for traumatic brain injury and soft tissue damage is presented. A variational ...
This study investigates the propagation of shock waves and self-preserving waves in soft tissues suc...
Conference paperMechanical characterization of brain tissue at high loading velocities is particular...
Finite element (FE) models of the human head have been used extensively to assess engineering respon...
Mechanics are increasingly recognized to play an important role in modulating brain form and functio...
Finite Element (FE) head models are often used to understand mechanical response of the head and its...