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1.
Comput Methods Biomech Biomed Engin ; 19(3): 248-256, 2016 Feb.
Artículo en Inglés | MEDLINE | ID: mdl-25693740

RESUMEN

This work presents a biomechanical study of myringosclerosis (MS), an abnormal condition of the ear that produces calcification of the lamina propria of the eardrum. The study researched the transfer of sound to the stapes depending on the localization, dimension and calcification degree of the MS plaques. Results were obtained using a validated finite element model of the ear. The mechanical properties of the lamina propria were modified, in order to model MS plaques, using the rule of mixtures for particle composites considering that the plaques are made of hydroxyapatite particles in a matrix of connective tissue. Results show that the localization and dimension of the plaques are a factor of higher importance than calcification for loss of hearing through MS. The mobility of the stapes decreased with the presence of larger plaques and also when the tympanic annulus and the area of the handle of the malleus were involved.


Asunto(s)
Oído Medio/fisiología , Análisis de Elementos Finitos , Audición , Membrana Timpánica/fisiología , Anciano , Femenino , Humanos , Procesamiento de Imagen Asistido por Computador , Modelos Biológicos , Miringoesclerosis/diagnóstico , Sonido , Estribo/fisiología
2.
J Biomech ; 49(9): 1518-1523, 2016 06 14.
Artículo en Inglés | MEDLINE | ID: mdl-27036071

RESUMEN

The eardrum separates the external ear from the middle ear and it is responsible to convert the acoustical energy into mechanical energy. It is divided by pars tensa and pars flaccida. The aim of this work is to analyze the susceptibility of the four quadrants of the pars tensa under negative pressure, to different lamina propria fibers distribution. The development of associated ear pathology, in particular the formation of retraction pockets, is also evaluated. To analyze these effects, a computational biomechanical model of the tympano-ossicular chain was constructed using computerized tomography images and based on the finite element method. Three fibers distributions in the eardrum middle layer were compared: case 1 (eardrum with a circular band of fibers surrounding all quadrants equally), case 2 (eardrum with a circular band of fibers that decreases in thickness in posterior quadrants), case 3 (eardrum without circular fibers in the posterior/superior quadrant). A static analysis was performed by applying approximately 3000Pa in the eardrum. The pars tensa of the eardrum was divided in four quadrants and the displacement of a central point of each quadrant analyzed. The largest displacements of the eardrum were obtained for the eardrum without circular fibers in the posterior/superior quadrant.


Asunto(s)
Fenómenos Mecánicos , Membrana Timpánica , Fenómenos Biomecánicos , Humanos , Modelos Biológicos , Presión
3.
Int J Numer Method Biomed Eng ; 30(12): 1409-20, 2014 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-25045115

RESUMEN

Hearing is a sequence of processes in which the ear translates sound waves into electrical signals, which are then sent to the brain where they are interpreted as sound. The ossicular chain of the middle ear is formed by three ossicles (malleus, incus, and stapes), of which the last and smallest, the stapes, vibrates, thus communicating with the inner ear through the stapes footplate. When abnormal bone formation immobilizes the stapes (otosclerosis), the passage of sound does not correctly occur and hearing can be compromised. In most cases, surgery is an option for its treatment. The stapes is totally or partially replaced by a prosthesis (stapedectomy or stapedotomy, respectively) allowing the passage of sound to the inner ear. This work presents a study on the behavior of different stapes prostheses, considering their biomechanical characteristics. The stapes was replaced by different prostheses, made of dissimilar materials: stainless steel, teflon, and titanium. The umbo and stapes footplate displacements for the models with these prostheses were obtained and compared with the displacements obtained with the model representative of the normal ear. In the models with prostheses, the displacements are found in the hole where the prosthesis is attached.


Asunto(s)
Fenómenos Biomecánicos/fisiología , Oído Medio/fisiología , Prótesis Osicular , Cirugía del Estribo/métodos , Estribo/fisiología , Anciano , Oído Medio/cirugía , Femenino , Análisis de Elementos Finitos , Humanos , Persona de Mediana Edad
4.
Comput Methods Biomech Biomed Engin ; 16(4): 392-402, 2013 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-22260089

RESUMEN

The human ear is a complex biomechanical system and is divided into three parts: outer, middle and inner ear. The middle ear is formed by ossicles (malleus, incus and stapes), ligaments, muscles and tendons, which transfers sound vibrations from the eardrum to the inner ear, linking with mastoid and Eustachian tube. In this work, a finite element modelling of the tympano-ossicular system of the middle ear was developed. A dynamic study based on a structural response to harmonic vibrations, for a sound pressure level (SPL) of 110, 120 and 130 dB SPL applied in the eardrum, is presented. The connection between the ossicles is made using a contact formulation. The model includes the different ligaments considering its hyperelastic behaviour. The activation of the muscles is based on the constitutive model proposed by previous work. The harmonic responses of displacement and pressure obtained on the stapes footplate, for a frequency range between 100 Hz and 10 kHz, are obtained simulating the muscle activation. The results are compared considering the passive and active states. The results are discussed and they are in accordance with audiological data published with reference to the effects of the middle ear muscles contraction.


Asunto(s)
Oído Medio/fisiología , Músculo Esquelético/fisiología , Osículos del Oído/anatomía & histología , Osículos del Oído/fisiología , Oído Medio/anatomía & histología , Análisis de Elementos Finitos , Humanos , Ligamentos/fisiología , Modelos Biológicos , Contracción Muscular , Músculo Esquelético/anatomía & histología , Presión , Estribo/fisiología , Vibración
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