INTRODUCTION Biomechanical analysis of orthodontic tooth movement is complex, as many different tissues and appliance components are involved. The aim of this finite element study was to assess the relative effect of material alteration of the various components of the orthodontic appliance on the biomechanical behaviour of tooth movement. METHODS A three-dimensional finite element solid model was constructed. The model consisted of a canine, a first, and a second premolar, including the surrounding tooth-supporting structures and fixed appliances. The materials of the orthodontic appliances were alternated between: (1) composite resin or resin-modified glass ionomer cement for the adhesive, (2) steel, titanium, ceramic, or plastic for t...
The aim of this work was to model tooth movement in a more clinically-exact fashion, thanks to the u...
The aim of this work was to model tooth movement in a more clinically-exact fashion, thanks to the u...
The aim of this work was to model tooth movement in a more clinically-exact fashion, thanks to the u...
INTRODUCTION Biomechanical analysis of orthodontic tooth movement is complex, as many different tis...
BACKGROUND: Torque of the maxillary incisors is crucial to occlusal relationship and esthetics and c...
Background: Torque of the maxillary incisors is crucial to occlusal relationship and esthetics and c...
The aim of orthodontic treatment is the displacement of teeth by means ofspecial appliances, like br...
INTRODUCTION: The finite element method (FEM) is an engineering resource applied to calculate the st...
Background- Orthodontics, a branch of dentistry focused on realigning teeth, has benefited from the ...
Finite Element Analysis (FEA) is a powerful computer-simulation tool in solving stress- strain probl...
In the 21st era, technological progressions challenged the dental professional to perform extremely ...
Orthodontic movement is process of transformation of a physical stimulation into a force applied to ...
The finite element method is a useful technique for measuring structural stress and for movement ana...
The purpose of this research was to verify a proposed closed-form solution which solved for the reac...
Identification of the mechanical environment changes in the tissues due to implementation of various...
The aim of this work was to model tooth movement in a more clinically-exact fashion, thanks to the u...
The aim of this work was to model tooth movement in a more clinically-exact fashion, thanks to the u...
The aim of this work was to model tooth movement in a more clinically-exact fashion, thanks to the u...
INTRODUCTION Biomechanical analysis of orthodontic tooth movement is complex, as many different tis...
BACKGROUND: Torque of the maxillary incisors is crucial to occlusal relationship and esthetics and c...
Background: Torque of the maxillary incisors is crucial to occlusal relationship and esthetics and c...
The aim of orthodontic treatment is the displacement of teeth by means ofspecial appliances, like br...
INTRODUCTION: The finite element method (FEM) is an engineering resource applied to calculate the st...
Background- Orthodontics, a branch of dentistry focused on realigning teeth, has benefited from the ...
Finite Element Analysis (FEA) is a powerful computer-simulation tool in solving stress- strain probl...
In the 21st era, technological progressions challenged the dental professional to perform extremely ...
Orthodontic movement is process of transformation of a physical stimulation into a force applied to ...
The finite element method is a useful technique for measuring structural stress and for movement ana...
The purpose of this research was to verify a proposed closed-form solution which solved for the reac...
Identification of the mechanical environment changes in the tissues due to implementation of various...
The aim of this work was to model tooth movement in a more clinically-exact fashion, thanks to the u...
The aim of this work was to model tooth movement in a more clinically-exact fashion, thanks to the u...
The aim of this work was to model tooth movement in a more clinically-exact fashion, thanks to the u...