DocumentCode :
312009
Title :
Towards a biomechanical model of the larynx
Author :
Labo, A. ; O´Malley, Michael
Author_Institution :
Berkeley/Speech Technol., Berkeley, CA, USA
Volume :
1
fYear :
1996
fDate :
3-6 Oct 1996
Firstpage :
279
Abstract :
The development of a large displacement large strain 3D finite element model of the vocal fold is reported. A fold is discretized into 720 8 node brick elements with a total of 1001 nodes and 3003 displacement degrees of freedom. The structure has realistic dimensions and geometry. The model includes geometric and material nonlinearities. The geometric nonlinearity appears in the strain displacement relation due to the second order displacement derivatives and the material nonlinearity refers to the constitutive law. The Mooney-Rivlin rubber material formulation for an anisotropic tissue medium is used to characterize the tissue rheology. The elasticity tensor and the stress tensor for the Total Lagrangian formulation are obtained from the partial derivatives of the strain energy density function (SEDF) with respect to the Green-Lagrange strain tensor. Incompressibility constraints have been added using a mixed displacement pressure (1 constant pressure term) finite element-a hydrostatic pressure work term (Lagrange Multiplier) being added to the SEDF. The structure is subjected to a sinusoidally time varying half cosine pressure profile applied on 117 medial surface nodes. The dynamic equilibrium equations are solved using an incremental iterative strategy and the Newmark method of time integration for the implicit initial boundary value problem. The deformation of the vocal fold at various phases of the applied load was studied
Keywords :
biology computing; biomechanics; boundary-value problems; finite element analysis; Green-Lagrange strain tensor; Lagrange Multiplier; Mooney-Rivlin rubber material formulation; Newmark method; anisotropic tissue medium; biomechanical model; elasticity tensor; finite element; geometric nonlinearity; hydrostatic pressure work term; implicit initial boundary value problem; incompressibility constraints; large displacement large strain 3D finite element model; larynx; material nonlinearities; medial surface nodes; mixed displacement pressure; second order displacement derivatives; sinusoidally time varying half cosine pressure profile; strain displacement relation; strain energy density function; vocal fold; Anisotropic magnetoresistance; Biological materials; Capacitive sensors; Finite element methods; Geometry; Lagrangian functions; Larynx; Rubber; Solid modeling; Tensile stress;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Spoken Language, 1996. ICSLP 96. Proceedings., Fourth International Conference on
Conference_Location :
Philadelphia, PA
Print_ISBN :
0-7803-3555-4
Type :
conf
DOI :
10.1109/ICSLP.1996.607101
Filename :
607101
Link To Document :
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