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T Zahnert

Publications and source records attributed to T Zahnert.

24 records · Page 2Linked to original sources

Experimental investigations of the use of cartilage in tympanic membrane reconstruction.

BACKGROUND: Temporalis fascia, perichondrium, and cartilage are commonly used for reconstruction of the tympanic membrane in middle ear surgery. Cartilage grafts offer the advantage of higher mechanical stability, particularly in cases of chronic tubal dysfunction, adhesive processes, or total defects of the tympanic membrane, in contrast to fascia and perichondrium, which presumably offer better acoustic quality. HYPOTHESIS: The purpose of this study was to determine the acoustic transfer characteristics of cartilage of varying thickness and its mechanical deformation when exposed to fluctuations in atmospheric pressure. METHOD: Ten pairs of cartilage specimens from the cavum conchae and the tragus were obtained from fresh human cadavers. Young's modulus was determined by mechanical tension tests and statistically evaluated using the t test. The acoustic transfer characteristics of an additional 10 specimens were measured by a laser Doppler Interferometer after stimulation with white noise in an external auditory canal--tympanic membrane model. Mechanical stability was determined by measuring displacement of the cartilage using static pressure loads of < or = 4 kPa. RESULTS: Young's modulus determinations for conchal and tragal cartilage were 3.4 N/mm2 and 2.8 N/mm2, respectively, but the difference was not significant. Acoustic testing showed a 5-dB higher vibration amplitude in the midfrequency range for conchal compared with tragal cartilage, but the difference was not significant. Reducing cartilage thickness led to an improvement of its acoustic transfer qualities, with a thickness < or = 500 microm resulting in an acceptable acoustic transfer loss compared with the tympanic membrane. CONCLUSION: Both conchal and tragal cartilage are useful for reconstruction of the tympanic membrane from the perspective of their acoustic properties. The acoustic transfer loss of cartilage can be reduced by decreasing its thickness. A thickness of 500 microm is regarded as a good compromise between sufficient mechanical stability and low acoustic transfer loss.

Acoustic Stimulation↗

[Acoustic and mechanical properties of tympanic membrane transplants].

BACKGROUND: The human tympanic membrane has reasonably good sound transmission properties and withstands high static pressure loads. Destruction of the tympanic membrane resulting from middle ear diseases or trauma may be repaired by different types of grafts. Middle ear surgery mostly uses autologous temporal fascia, cartilage, or cartilage perichondrium transplants which differ in their acoustical characteristics and mechanical strength. METHODS: We have investigated the acoustical and mechanical properties of these materials and compared them with human tympanic membranes by constructing an ear canal-tympanic membrane model. Fresh human tympanic membrane, fascia, perichondrium, and cartilage preparations were exposed to static pressures up to 4 kPa and white noise sound pressure levels of 70 dB. The vibrational amplitudes and displacements due to static pressure were measured by laser Doppler vibrometry. RESULTS: The temporal fascia and perichondrium show similar amplitude frequency responses compared to the tympanic membrane for dynamic excitation. The displacement of these materials at static pressures above 4 kPa indicates a higher compliance than the tympanic membrane. The acoustical and mechanical properties of cartilage transplants are determined by the thickness of the slices. Thin cartilage slices are less stable although their frequency response is comparable to the intact tympanic membrane. Layer thickness above 500 microns result in a decrease of vibration amplitudes. CONCLUSIONS: Cartilage is an excellent transplant material which provides a better prognosis than soft materials in cases of ventilation disorders with long-term middle ear pressure problems. Large cartilage slice transplants should not exceed layer thickness of 500 microns in order to minimize transmission loss.

Acoustic Impedance Tests↗

Modelling of components of the human middle ear and simulation of their dynamic behaviour.

In order to get a better insight into the function of the human middle ear it is necessary to simulate its dynamic behaviour by means of the finite-element method. Three-dimensional measurements of the surfaces of the tympanic membrane and of the auditory ossicles malleus, incus and stapes are carried out and geometrical models are created. On the basis of these data, finite-element models are constructed and the dynamic behaviour of the combinations tympanic membrane with malleus in its elastic suspensions and stapes with annular ligament is simulated. Natural frequencies and mode shapes are computed by modal analysis. These investigations showed that the ossicles can be treated as rigid bodies only in a restricted frequency range from 0 to 3.5 kHz.

Computer Simulation↗

Identification of parameters for the middle ear model.

This paper presents a method of parameter identification for a finite-element model of the human middle ear. The parameter values are estimated using a characterization of the difference in natural frequencies and mode shapes of the tympanic membrane between the model and the specimens. Experimental results were obtained from temporal bone specimens under sound excitation (300-3,000 Hz). The first 3 modes of the tympanic membrane could be observed with a laser scanning vibrometer and were used to estimate the stiffness parameters for the orthotropic finite-element model of the eardrum. A further point of discussion is the parameter sensitivity and its implication for the identification process.

Acoustic Stimulation↗