Tympanic Membrane Collagen Fibers: A Key to High‐Frequency Sound Conduction
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Summary
The objective is to investigate the significance of tympanic membrane collagen fiber layers in high frequency sound transmission and to establish an experimental procedure to evaluate the role of these layers in sound transmission.
- Type
- article
- Published
- 2008-03-01
- Cited by
- 81
- References
- 14
- OpenAlex
- https://openalex.org/W1969893566
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:31348193
Keywords
Footplate, Stapes, Materials science, Sound pressure, Anatomy
References
- Frequency Bandwidth and Multi-talker Environments
- Malleus-to-Footplate Ossicular Reconstruction Prosthesis Positioning: Cochleovestibular Pressure Optimization
- Three approaches for estimating the elastic modulus of the tympanic membrane.
- Middle-ear function with tympanic-membrane perforations. I. Measurements and mechanisms.
- Earlens∗ Tympanic Contact Transducer: A New Method of Sound Transduction to the Human Ear
- The discordant eardrum
- Malleus-to-Footplate versus Malleus-to-Stapes-Head Ossicular Reconstruction Prostheses: Temporal Bone Pressure Gain Measurements and Clinical Audiological Data
- Suppression of tinnitus by cochlear implantation.
- Measurements and model of the cat middle ear: evidence of tympanic membrane acoustic delay.
- Measurements of human middle ear forward and reverse acoustics: implications for otoacoustic emissions.
- Middle ear cavity and ear canal pressure-driven stapes velocity responses in human cadaveric temporal bones.
- How do tympanic-membrane perforations affect human middle-ear sound transmission?
- New knowledge about the function of the human middle ear: development of an improved analog model.
- Finite Element Analysis Of Middle Ear Mechanics
Cited by
- Acceleration of Healing of Traumatic Tympanic Membrane Perforation in Rats by Implanted Collagen Membrane Integrated with Collagen-Binding Basic Fibroblast Growth Factor
- Humidity Effect on the Structure of Electrospun Core-Shell PCL-PEG Fibers for Tissue Regeneration Applications
- Nanomechanics of Electrospun Nanofibres for Tissue Engineering of the Tympanic Membrane
- Human middle-ear model with compound eardrum and airway branching in mastoid air cells.
- Estimation of outer-middle ear transmission using DPOAEs and fractional-order modeling of human middle ear
- Tympanic membrane repair using silk fibroin and acellular collagen scaffolds
- Tissue Engineering of the Tympanic Membrane
- Holographic otoscope for nano-displacement measurements of surfaces under dynamic excitation
- Virtual biopsy of rat tympanic membrane using higher harmonic generation microscopy.
- Time-domain "wave" model of the human tympanic membrane.
- Comparisons of electromagnetic and piezoelectric floating-mass transducers in human cadaveric temporal bones
- Scaffolds for Tympanic Membrane Regeneration in Rats
- Atropic Tympanic Membrane and Hearing Assessment
- A sum of simple and complex motions on the eardrum and manubrium in gerbil
- Spontaneous healing of the tympanic membrane after traumatic perforation in rats
- Middle-Ear Function At High Frequencies Quantified With Advanced Bone Conduction Measures
- Computer-assisted time-averaged holograms of the motion of the surface of the mammalian tympanic membrane with sound stimuli of 0.4 to 25 kHz
- Panel 3
- Holographic otoscope using dual-shot-acquisition for the study of eardrum biomechanical displacements.
- Panel 2
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