Sound pressure distribution within human ear canals: II. Reverse mechanical stimulation

被引:4
作者
Ravicz, Michael E. [1 ,2 ]
Cheng, Jeffrey Tao [1 ,2 ]
Rosowski, John J. [1 ,2 ]
机构
[1] Massachusetts Eye & Ear, Eaton Peabody Lab, 243 Charles St, Boston, MA 02114 USA
[2] Harvard Med Sch, Dept Otolaryngol Head & Neck Surg, 243 Charles St, Boston, MA 02114 USA
关键词
PRODUCT OTOACOUSTIC EMISSIONS; TYMPANIC MEMBRANE; IN-SITU; IMPEDANCE; LEVEL; FIELD; REFLECTANCE; CALIBRATION; ACOUSTICS; THRESHOLD;
D O I
10.1121/1.5094776
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
This work is part of a study of the interactions of ear canal (EC) sound with tympanic membrane (TM) surface displacements. In human temporal bones, the ossicles were stimulated mechanically "in reverse" to mimic otoacoustic emissions (OAEs), and the sound field within the ear canal was sampled with 0.5-2mm spacing near the TM surface and at more distal locations within the EC, including along the longitudinal EC axis. Sound fields were measured with the EC open or occluded. The reverse-driven sound field near the TM had larger and more irregular spatial variations below 10 kHz than with forward sound stimulation, consistent with a significant contribution of nonuniform sound modes. These variations generally did not propagate more than similar to 4mm laterally from the TM. Longitudinal sound field variations with the EC open or blocked were consistent with standing-wave patterns in tubes with open or closed ends. Relative contributions of the nonuniform components to the total sound pressure near the TM were largest at EC natural frequencies where the longitudinal component was small. Transverse variations in EC sound pressure can be reduced by reducing longitudinal EC sound pressure variations, e.g., via reducing reflections from occluding earplugs. (C) 2019 Acoustical Society of America.
引用
收藏
页码:1569 / 1583
页数:15
相关论文
共 42 条
[1]  
Beranek L., 1986, Acoustics
[2]   CLINICAL-APPLICATIONS OF EVOKED ACOUSTIC EMISSIONS - RESULTS IN NORMALLY HEARING AND HEARING-IMPAIRED SUBJECTS [J].
BONFILS, P ;
UZIEL, A .
ANNALS OF OTOLOGY RHINOLOGY AND LARYNGOLOGY, 1989, 98 (05) :326-331
[3]  
BONFILS P, 1988, ARCH OTOLARYNGOL, V114, P887
[4]   Compensating for ear-canal acoustics when measuring otoacoustic emissions [J].
Charaziak, Karolina K. ;
Shera, Christopher A. .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2017, 141 (01) :515-531
[5]  
Cheng J. T., 2012, PROGR AUDITORY BIOME
[6]   Tympanic membrane surface motions in forward and reverse middle ear transmissions [J].
Cheng, Jeffrey Tao ;
Maftoon, Nima ;
Guignard, Jeremie ;
Ravicz, Michael E. ;
Rosowski, John .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2019, 145 (01) :272-291
[7]   The Effect of Ear Canal Orientation on Tympanic Membrane Motion and the Sound Field Near the Tympanic Membrane [J].
Cheng, Jeffrey Tao ;
Ravicz, Michael ;
Guignard, Jeremie ;
Furlong, Cosme ;
Rosowski, John J. .
JARO-JOURNAL OF THE ASSOCIATION FOR RESEARCH IN OTOLARYNGOLOGY, 2015, 16 (04) :413-432
[8]   Distortion-product otoacoustic emissions measured at high frequencies in humans [J].
Dreisbach, LE ;
Siegel, JH .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2001, 110 (05) :2456-2469
[9]   MATHEMATICAL-MODELING OF A PROBE-TUBE MICROPHONE [J].
EGOLF, DP .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1977, 61 (01) :200-205
[10]  
Faddis B.T., 2008, Anatomy and Physiology of Hearing for Audiologists, P93