Literature DB >> 12433394

The incudo-malleolar joint and sound transmission losses.

Urban B Willi1, Mattia A Ferrazzini, Alex M Huber.   

Abstract

The question as to whether the incudo-malleolar joint (IMJ) is mobile or immobile at moderate sound pressure levels (SPLs) is addressed. Referring to the mechanical properties of elastic tissue, we suggest that the IMJ is mobile at any SPL. In order to test this hypothesis, we investigated the dynamics of the IMJ in nine temporal bones by means of laser scanning doppler vibrometry. The dynamic behavior of both ossicles, malleus and incus is described by three degrees of freedom, and transfer functions (TFs) are shown for each motion component [corrected]. We show that there is indeed relative motion between the malleus and the incus. This transmission loss affects the middle ear TF and results in a frequency dependent sound transmission loss. Some characteristics of our results are in agreement with middle ear TFs described in the literature. The increasing transmission loss towards higher frequencies is caused by relative motion between malleus and incus at the IMJ. The concept that the IMJ is functionally mobile is consistent with the physical properties of elastic tissues which most likely define the mechanics of this joint. Since the IMJ is indeed mobile at moderate sound intensities and audible frequencies the theory of the lever ratio being responsible for the characteristics of the middle ear TF must be reconsidered.

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Year:  2002        PMID: 12433394     DOI: 10.1016/s0378-5955(02)00632-9

Source DB:  PubMed          Journal:  Hear Res        ISSN: 0378-5955            Impact factor:   3.208


  25 in total

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Journal:  GMS Curr Top Otorhinolaryngol Head Neck Surg       Date:  2005-09-28

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Journal:  J Assoc Res Otolaryngol       Date:  2007-09-08

3.  [Vibration properties of the ossicle and cochlea and their importance for our hearing system].

Authors:  A M Huber; A Eiber
Journal:  HNO       Date:  2011-03       Impact factor: 1.284

4.  Round window membrane implantation with an active middle ear implant: a study of the effects on the performance of round window exposure and transducer tip diameter in human cadaveric temporal bones.

Authors:  Stéphane Tringali; Kanthaiah Koka; Arnaud Deveze; N Julian Holland; Herman A Jenkins; Daniel J Tollin
Journal:  Audiol Neurootol       Date:  2010-02-11       Impact factor: 1.854

5.  Tympanic membrane surface motions in forward and reverse middle ear transmissions.

Authors:  Jeffrey Tao Cheng; Nima Maftoon; Jérémie Guignard; Michael E Ravicz; John Rosowski
Journal:  J Acoust Soc Am       Date:  2019-01       Impact factor: 1.840

6.  Finite-Element Modelling of the Acoustic Input Admittance of the Newborn Ear Canal and Middle Ear.

Authors:  Hamid Motallebzadeh; Nima Maftoon; Jacob Pitaro; W Robert J Funnell; Sam J Daniel
Journal:  J Assoc Res Otolaryngol       Date:  2016-10-07

7.  Chinchilla middle ear transmission matrix model and middle-ear flexibility.

Authors:  Michael E Ravicz; John J Rosowski
Journal:  J Acoust Soc Am       Date:  2017-05       Impact factor: 1.840

8.  Middle-Ear Sound Transmission Under Normal, Damaged, Repaired, and Reconstructed Conditions.

Authors:  Wei Dong; Ying Tian; Xin Gao; Timothy T K Jung
Journal:  Otol Neurotol       Date:  2017-04       Impact factor: 2.311

9.  Human middle-ear model with compound eardrum and airway branching in mastoid air cells.

Authors:  Douglas H Keefe
Journal:  J Acoust Soc Am       Date:  2015-05       Impact factor: 1.840

10.  Effects of ear-canal pressurization on middle-ear bone- and air-conduction responses.

Authors:  Kenji Homma; Yoshitaka Shimizu; Namkeun Kim; Yu Du; Sunil Puria
Journal:  Hear Res       Date:  2009-11-26       Impact factor: 3.208

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