The Journal of the Acoustical Society of America · 2001 · 106 citations · 20 references
Sound transmission through ears with tympanic‑membrane perforations is not well understood. The study reports measurements on human cadaver ears to describe sound transmission through the middle ear with experimentally produced perforations ranging from 0.5 to 5.0 mm in diameter. Three response variables—stapes velocity, middle‑ear cavity sound pressure, and acoustic impedance at the TM—were measured with acoustic stimulation at the TM. Perforations produce frequency‑dependent losses that are greatest at low frequencies and increase with size, mainly due to reduced pressure difference across the TM, with impedance approaching that of the middle‑ear cavity, indicating that air‑volume flow from the ear canal to the cavity explains the losses and providing a quantitative tool for clinicians to assess hearing deficits.
Sound transmission through ears with tympanic-membrane (TM) perforations is not well understood. Here, measurements on human-cadaver ears are reported that describe sound transmission through the middle ear with experimentally produced perforations, which range from 0.5 to 5.0 mm in diameter. Three response variables were measured with acoustic stimulation at the TM: stapes velocity, middle-ear cavity sound pressure, and acoustic impedance at the TM. The stapes-velocity measurements show that perforations cause frequency-dependent losses; at low frequencies losses are largest and increase as perforation size increases. Measurements of middle-ear cavity pressure coupled with the stapes-velocity measurements indicate that the dominant mechanism for loss with TM perforations is reduction in pressure difference across the TM; changes in TM-to-ossicular coupling generally contribute less than 5 dB to the loss. Measurements of middle-ear input impedance indicate that for low frequencies, the input impedance with a perforation approximates the impedance of the middle-ear cavity; as the perforation size increases, the similarity to the cavity’s impedance extends to higher frequencies. The collection of results suggests that the effects of perforations can be represented by the path for air-volume flow from the ear canal to the middle-ear cavity. The quantitative description of perforation-induced losses may help clinicians determine, in an ear with a perforation, whether poor hearing results only from the perforation or whether other pathology should be expected.
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Acoustic responses of the human middle ear
Susan E. Voss, John J. Rosowski, Saumil N. Merchant et al. · Hearing Research · 2000 · 205 citations
Effect of changes in mass on middle ear function
Shinsei Nishihara, Hiroshi Aritomo, Richard L. Goode · Otolaryngology · 1993 · 91 citations · Full text