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Tytuł artykułu

An influence of auditory chain components’ stiffness on vibrations characteristics measured by a finite-element model of the middle ear structure

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Konferencja
Jubilee Symposium Vibrations In Physical Systems (25 ; 15-19.05.2012 ; Będlewo koło Poznania ; Polska)
Języki publikacji
EN
Abstrakty
EN
The problem of modelling of middle ear auditory chain functioning is still very difficult to be made precisely in comparison with the real ossicles’ behaviour observed experimentally. The main reason for this is geometrical complexity and a number of material characteristics of the ossicles themselves. Here, FEM is engaged to model human middle ear work because this method allows for reconfiguring of complex auditory chain geometry, various material models etc. and provides good accuracy.
Rocznik
Tom
Strony
347--353
Opis fizyczny
Bibliogr. 14 poz., wykr.
Twórcy
autor
  • Lublin University of Technology, 36 Nadbystrzycka St., Lublin 20-618, Poland
autor
  • Lublin University of Technology, 36 Nadbystrzycka St., 20-618 Lublin, Poland
  • Department of Otolaryngology, Head and Neck Surgery, Medical University of Lublin, 8 Jaczewskiego St., 20-854 Lublin, Poland
Bibliografia
  • 1. T. Koike, H. Wada, T. Kobayashi, Modeling of the human middle ear using the finite-element method, J. Acoust. Soc. Am. 111 (2002) 1306.
  • 2. W.-j. Yao, J.-w. Ma, B.-l. Hu, Numerical Model on Sound-Solid Coupling in Human Ear and Study on Sound Pressure of Tympanic Membrane, Mathematical Problems in Engineering 2011 (2011) 1–13.
  • 3. A. Eiber, H.G. Freitag, C. Burkhardt, W. Hemmert, M. Maassen, J. Rodriguez Jorge, H.P. Zenner, Dynamics of Middle Ear Prostheses - Simulations and Measurements, Audiol Neurootol 4 (1999) 178–184.
  • 4. P. Ferris, P. Prendergast, Middle-ear dynamics before and after ossicular replacement, Journal of Biomechanics 33 (2000) 581–590.
  • 5. M. Neudert, M. Berner, M. Bornitz, T. Beleites, M. Ney, T. Zahnert, Osseointegration of Prostheses on the Stapes Footplate: Evaluation of the Biomechanical Feasibility by Using a Finite Element Model, JARO 8 (2007) 411–421.
  • 6. Bornitz M, Zahnert T, Hardtke H. J, Huttenbrink K. B, Identyfication of Parameters for the Middle Ear Model, Audiology & Neuro-Otology 4 (1999) 163–169.
  • 7. H. Cai, R.P. Jackson, C. Steele, S. Puria, A Biological Gear in the Human Middle Ear, in: Proceedings of the COSMOL Conference, 2010.
  • 8. T. Cheng, R.Z. Gan, Mechanical properties of anterior malleolar ligament from experimental measurement and material modeling analysis, Biomech Model Mechanobiol 7 (2008) 387–394.
  • 9. R.Z. Gan, Q.L. Sun, R.K. Dyer, K.H. Chang, K.J. Dormer, Three-dimensional modeling of middle ear biomechanics and its applications, Otology & Neurotology 23 (2002) 271–280.
  • 10. W.-j. Yao, H.-c. Zhou, B.-l. Hu, X.-s. Huang, X.-q. Li, Research on Ossicular Chain Mechanics Model, Mathematical Problems in Engineering 2010 (2010) 1–15.
  • 11.T. Sadowski, S. Samborski, Modeling of Porous Ceramics Response to Compressive Loading, Journal of the American Ceramic Society 86 (2003) 2218–2221.
  • 12. T. Sadowski, S. Samborski, Development of damage state in porous ceramics under compression: Proceedings of the 16th International Workshop on Computational Mechanics of Materials IWCMM-16, Computational Materials Science 43 (2008) 75–81.
  • 13. E. Skrodzka, J. Modławska, Modelling of some mechanical malfunctions of the human tympanic membrane. Polish J. Environmental Stud. 15 4a(2006) 140-144.
  • 14. E. Skrodzka, J. Modławska, Modal Analysis of the Human Tympanic Membrane of The Middle Ear Using the Finite-Element Method. Archives of Acoustics 31 4(2006) 23-28.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-eae59fef-5930-438d-8b1f-a0f0b7334eab
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