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System pomiarowy do badań eksperymentalnych mechaniki ucha środkowego

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Warianty tytułu
EN
Measurement system for experimental studies of middle ear mechanics
Języki publikacji
PL
Abstrakty
PL
W artykule opisano system pomiarowy do bezkontaktowego pomiaru parametrów drgań elementów strukturalnych narządu słuchu. Zaproponowano oryginalną metodykę pomiarów eksperymentalnych drgań błony okienka okrągłego w warunkach in-vitro oraz stwierdzono, że technika laserowej wibrometrii Dopplerowskiej jest przydatnym narzędziem badawczym w skali mikro- i nanometrowej nie tylko obiektów technicznych ale również obiektów biologicznych.
EN
This paper presents the measuring system for non-contact measurements of vibration parameters of the hearing organ structural elements. An original methodology for in-vitro measurements of the round window membrane vibration is proposed. It was found that the Laser Doppler Vibrometry (LDV) technique is a useful research tool in micro- and nanometer scale not only technical but also biological objects. Section 1 shows the hearing organ anatomic structure (Fig. 1) and presents the applicability of the LDV method. Section 2 contains a brief review of the literature [1-16] presenting the methodology of experimental middle ear mechanics carried out by the LDV technique. Subsection 2.1 describes the various ways of making the temporal bone preparations and contains diagrams showing examples of such preparations (Fig. 2). Subsections 2.2 and 2.3 deal with a system that forces acoustic vibrations in the test preparation and the optical system allowing measurements of the velocity or displacement amplitude of vibrating elements. Section 3 presents the authors' methodology for experimental measurements of the round window membrane vibration. There is shown the scheme of experimental measurements and view of the part of the test stand (Fig. 4) as well as the functional diagram (Fig. 5), block diagram and view of the measurement system (Fig. 6). In Section 4 there is described the possibility of using the developed methodology and the measurement system.
Wydawca
Rocznik
Strony
25--29
Opis fizyczny
Bibliogr. 18 poz., rys., schem.
Twórcy
autor
autor
autor
  • Instytut Mikromechaniki i Fotoniki, Politechnika Warszawska, ul. św. Andrzeja Boboli, 02-525 Warszawa, m.kwacz@mchtr.pw.edu.pl
Bibliografia
  • [1] Rosowski J. J., Davis P. J., Merchant S. N., Donahue K. M., Coltrera M. D. (1990): Cadaver Middle Ears as Models for Living Ears: Comparison of Middle Ear Input Immitance, Ann Otol Rhinol Laryngol 99, 403-412.
  • [2] Goode R. L., Ball G., Nishihara S. (1993): Measurement of umbo vibration in human subjects - method and possible clinical applications, Am J Otol 14, 247-251.
  • [3] Goode R. L., Ball G., Nishihara S., Nakamura K. (1996): Laser Doppler Vibrometer (LDV) - A new clinical tool for the otologist, Otol Neurotol 17 (6), 813-822.
  • [4] Nishihara S., Goode R. L. (1997): Measurement of tympanic membrane vibration in 99 human ears, In: Research and Otosurgery: Proceedings of the International Workshop on Middle Ear Mechanics in Research and Otosurgery, ed. K. B. Huttenbrink, Dresden University Press, Dresden, Germany, 91-93.
  • [5] Huber A. M., Linder T., Ferrazzini M., Schmid S., Dillier N., Fisch U. (2000): Intraoperative scanning laser Doppler interferometry, in Recent Developments in Auditory Mechanics, edited by H. Wada, T. Takasaka, K. Ikeda, K. Ohyama, T. Koike, World Scientific, Singapore, 10-14.
  • [6] Huber A. M., Schwab C., Linder T., Stoeckli S. J., Ferrazzini M., Dillier N., Fisch U. (2001b): Evaluation of Eardrum Laser Doppler Interferometry as a Diagnostic Tool, Laryngoscope 111 (3), 501-507.
  • [7] Aibara R., Welsh J., Puria S., Goode R. (2001): Human middle-ear sound transfer function and cochlear input impedance, Hearing Research 152, 100-109.
  • [8] Stenfelt S., Hato N., Goode R. L. (2004b): Round window membrane motion with air conduction and bone conduction stimulation, Hearing Research 198 (1-2), 10-24.
  • [9] Voss S. E., Rosowski J. J., Merchant S. N., Peake W. T. (2000): Acoustic responses of the human middle ear, Hearing Research 150, 43-69.
  • [10] Voss S. E., Rosowski J. J., Merchant S. N., Peake W. T. (2001): How do tympanic-membrane perforations affect human middle-ear sound transmission?, Acta Otolaryngol 121, 169-173.
  • [11] Hato N., Welsh J., Goode R. L., Stenfelt S. (2001): Acoustic role of the buttress and posterior includal ligament in human temporal bones, Otolaryngol. Head Neck Sur. 124, 274-278.
  • [12] Willi U., Ferrazzini M. A., Huber A. M. (2002): The incudo-malleolar joint and sound transmission losses, Hearing Research 174, 32-44.
  • [13] Puria S. (2003): Measurements of human middle ear forward and reverse acoustic: Implication for otoacoustic emissions, J Acoust Soc Am 113 (5), 2773-2789.
  • [14] Puria S., Kunda L. D., Roberson J. B. Jr., Perkins R. C. (2005): Malleus-to-footplate ossicular reconstruction prosthesis positioning: cochleovestibular pressure optimization, Otol Neurotol 26 (3), 368-379.
  • [15] Nakajima H. H., Ravicz M. E., Rosowski J. J., Peake W. T., Merchant S. N. (2005a): Experimental and clinical studies of malleus fixation, Laryngoscope 115 (1), 147-154.
  • [16] O'Connor K. N., Puria S. (2006): Middle ear cavity and ear canal pressure-driven stapes velocity responses in human cadaveric temporal bones, J Acoust Soc Am 120 (3), 1517-1528.
  • [17] Puria S., Allen J. B. (1992): SYSid: audio-band measurement and analysis system, J Acoust Soc Am 92, 2469.
  • [18] Puria S., Allen J. B., Elko G. W., Jeng P. S., Kirkegaard D. L.(1993): Measurements and analysis with SYSid, J Acoust Soc Am 93, 2556.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BSW4-0097-0008
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