The Finite Element Method is at present the method of choice for strain prediction in bones from Computed Tomography data. However, accurate methods rely on the correct topological representation of the bone surface, which requires a massive operator effort, thus restricting their applicability to clinical practice. Meshless methods, which do not rely on a pre-defined topological discretisation of the domain, might greatly improve the numerical process automation, but currently their application to biomechanics is negligible. A meshless implementation of an innovative numerical approach based on a direct discrete formulation of physical laws, the Cell Method, was developed to predict strains in a cadaver femur from Computed Tomography data....
none4Most of the finite element models of bones used in orthopaedic biomechanics research are based ...
The present thesis concerns employing the finite element method together with computed tomography to...
none5The aim of this paper is to analyze how the uncertainties in modelling the geometry and the mat...
none5The determination of the mechanical stresses induced in human bones is of great importance in b...
The determination of the mechanical stresses induced in human bones is of great importance in both r...
none5The prediction of the stress-state and fracture risk induced in bones by various loading condit...
The determination of the mechanical stresses induced in human bones is of great importance in both r...
Aim of the present study was to evaluate the influence on the global model's accuracy of the strateg...
Despite recent progress, Finite Element Analysis (FEA) of bone based on microCT imaging involves man...
Standard methods for predicting bone's mechanical response from quantitative computer tomography (qC...
The accurate measurement of local strain is necessary to study bone mechanics and to validate micro ...
Finite element (FE) models of long bones constructed from computed-tomography (CT) data are emerging...
OBJECTIVES: Finite-element-models (FEM) are a promising technology to predict bone strength and frac...
The assignment of bone tissue material properties is a fundamental step in the generation of subject...
none4Most of the finite element models of bones used in orthopaedic biomechanics research are based ...
The present thesis concerns employing the finite element method together with computed tomography to...
none5The aim of this paper is to analyze how the uncertainties in modelling the geometry and the mat...
none5The determination of the mechanical stresses induced in human bones is of great importance in b...
The determination of the mechanical stresses induced in human bones is of great importance in both r...
none5The prediction of the stress-state and fracture risk induced in bones by various loading condit...
The determination of the mechanical stresses induced in human bones is of great importance in both r...
Aim of the present study was to evaluate the influence on the global model's accuracy of the strateg...
Despite recent progress, Finite Element Analysis (FEA) of bone based on microCT imaging involves man...
Standard methods for predicting bone's mechanical response from quantitative computer tomography (qC...
The accurate measurement of local strain is necessary to study bone mechanics and to validate micro ...
Finite element (FE) models of long bones constructed from computed-tomography (CT) data are emerging...
OBJECTIVES: Finite-element-models (FEM) are a promising technology to predict bone strength and frac...
The assignment of bone tissue material properties is a fundamental step in the generation of subject...
none4Most of the finite element models of bones used in orthopaedic biomechanics research are based ...
The present thesis concerns employing the finite element method together with computed tomography to...
none5The aim of this paper is to analyze how the uncertainties in modelling the geometry and the mat...