Suppr超能文献

沙鼠鼓膜在准静态压力扫描下的振动测量。

Vibration Measurements of the Gerbil Eardrum Under Quasi-static Pressure Sweeps.

机构信息

Department of BioMedical Engineering, McGill University, 3775 rue University, Montréal, QC, H3A 2B4, Canada.

Department of Otolaryngology - Head and Neck Surgery, McGill University, Montréal, Canada.

出版信息

J Assoc Res Otolaryngol. 2022 Dec;23(6):739-750. doi: 10.1007/s10162-022-00867-x. Epub 2022 Sep 13.

Abstract

Tympanometry provides an objective measurement of the status of the middle ear. During tympanometry, the ear-canal pressure is varied, while the response of the ear to sound pressure is measured. The effects of the pressure on the mechanics of the middle ear are not well understood. This study is a continuation of our previous work in which the vibration response of the gerbil eardrum was measured in vivo under quasi-static pressure steps. In this study, we delivered a continuous pressure sweep to the middle ear and measured the vibration response at four locations for six gerbils. Vibrations were recorded using a single-point laser Doppler vibrometer and glass-coated reflective beads (diameter ~ 40 µm) at the umbo and on the mid-manubrium, posterior pars tensa and anterior pars tensa.The vibration magnitudes were similar to those in the previous step-wise pressurization experiments. Most gerbils showed repeatability within less than 10 dB for consecutive cycles. As described in the previous study, as the frequency was increased at ambient pressure, the vibration magnitude on the manubrium increased slightly to a broad peak (referred to as R1) and then decreased until a small peak appeared (referred to as R2), followed by multiple peaks and troughs as the magnitude decreased further. The low-frequency vibration magnitude (at 1 kHz) decreased monotonically as the pressure became more negative except for a dip (about 500 Pa wide) that occurred between - 700 and - 1800 Pa. The lowest overall magnitude was recorded in the dip at mid-manubrium. The vibration magnitudes also decreased as the middle-ear pressure was made more positive and were larger than those at negative pressures. R1 was only visible at negative and small positive middle-ear pressures, while R2 was visible for both positive and negative pressures. R2 split into multiple branches after the middle-ear pressure became slightly positive. No magnitude dip was visible for positive middle-ear pressures.The low-frequency vibration magnitudes at negative middle-ear pressures on the pars tensa were higher than those on the manubrium. R1 was not visible for large negative middle-ear pressures on the pars tensa. R2 appeared as a multi-peak feature on the pars tensa as well, and a higher-frequency branch on the posterior pars tensa appeared as a trough on the anterior pars tensa. The magnitude dip was not present on the pars tensa. The largest overall magnitude was recorded at the R2 peak on the posterior pars tensa.The results of this study expand on the findings of the step-wise pressurization experiments and provide further insight into the evolution of the vibration response of the eardrum under quasi-static pressures.

摘要

鼓室测压法为中耳状态提供了一种客观的测量方法。在鼓室测压法中,改变耳腔压力,同时测量耳朵对声压的响应。中耳力学对压力的影响还不太清楚。本研究是我们之前工作的延续,之前的工作中,我们在准静态压力阶跃下测量了沙鼠鼓膜的体内振动响应。在这项研究中,我们向中耳连续施加压力扫描,并在 6 只沙鼠的 4 个位置测量振动响应。振动使用单点激光多普勒测振仪和玻璃涂层反射珠(直径约 40 μm)在鼓脐和中柄、后紧张部和前紧张部进行记录。振动幅度与之前的逐步加压实验相似。大多数沙鼠在连续循环中,在小于 10 dB 的范围内表现出可重复性。如前一项研究所述,在环境压力下增加频率时,中柄上的振动幅度略有增加,形成一个宽峰(称为 R1),然后减小,直到出现一个小峰(称为 R2),随后随着幅度进一步减小,出现多个峰和谷。低频振动幅度(在 1 kHz 时)随着压力变得更负而单调减小,除了在 - 700 到 - 1800 Pa 之间出现的一个约 500 Pa 宽的下降(dip)外。在中柄中部的下降处记录到总体上最低的幅度。当中耳压力变得更正时,振动幅度也会减小,并且大于负压时的幅度。R1 仅在负和小正中耳压力下可见,而 R2 则在正、负压力下都可见。R2 在中耳压力稍微变正时分为多个分支。正中耳压力下没有可见的幅度下降。负压时紧张部的低频振动幅度高于中柄。在紧张部的大负压时,R1 不可见。R2 在紧张部也表现为多峰特征,高频分支在后紧张部出现,在前紧张部则表现为谷。紧张部没有幅度下降。后紧张部 R2 峰值处记录到的总体幅度最大。本研究的结果扩展了逐步加压实验的发现,并进一步深入了解了鼓膜在准静态压力下的振动响应的演变。

相似文献

1
Vibration Measurements of the Gerbil Eardrum Under Quasi-static Pressure Sweeps.
J Assoc Res Otolaryngol. 2022 Dec;23(6):739-750. doi: 10.1007/s10162-022-00867-x. Epub 2022 Sep 13.
2
Vibration Measurements of the Gerbil Eardrum Under Quasi-static Pressure Steps.
J Assoc Res Otolaryngol. 2020 Aug;21(4):287-302. doi: 10.1007/s10162-020-00763-2. Epub 2020 Aug 11.
3
Experimental study of vibrations of gerbil tympanic membrane with closed middle ear cavity.
J Assoc Res Otolaryngol. 2013 Aug;14(4):467-81. doi: 10.1007/s10162-013-0389-9. Epub 2013 Apr 27.
4
Effects of middle-ear static pressure on pars tensa and pars flaccida of gerbil ears.
Hear Res. 2001 Mar;153(1-2):146-63. doi: 10.1016/s0378-5955(00)00269-0.
5
Finite-Element Modelling of the Response of the Gerbil Middle Ear to Sound.
J Assoc Res Otolaryngol. 2015 Oct;16(5):547-67. doi: 10.1007/s10162-015-0531-y. Epub 2015 Jul 22.
6
Effect of opening middle-ear cavity on vibrations of gerbil tympanic membrane.
J Assoc Res Otolaryngol. 2014 Jun;15(3):319-34. doi: 10.1007/s10162-014-0442-3. Epub 2014 Jan 23.
8
The effect of immobilizing the gerbil's pars flaccida on the middle-ear's response to static pressure.
Hear Res. 2002 Dec;174(1-2):183-95. doi: 10.1016/s0378-5955(02)00655-x.
9
Effect of middle ear components on eardrum quasi-static deformation.
Hear Res. 2001 Jul;157(1-2):124-37. doi: 10.1016/s0378-5955(01)00290-8.
10
Nonlinearity in eardrum vibration as a function of frequency and sound pressure.
Hear Res. 2010 May;263(1-2):26-32. doi: 10.1016/j.heares.2009.12.022. Epub 2009 Dec 21.

本文引用的文献

1
Contribution of the flexible incudo-malleal joint to middle-ear sound transmission under static pressure loads.
Hear Res. 2021 Jul;406:108272. doi: 10.1016/j.heares.2021.108272. Epub 2021 May 11.
2
Vibration Measurements of the Gerbil Eardrum Under Quasi-static Pressure Steps.
J Assoc Res Otolaryngol. 2020 Aug;21(4):287-302. doi: 10.1007/s10162-020-00763-2. Epub 2020 Aug 11.
3
Analysis of wideband tympanometry in Ménière's disease.
Braz J Otorhinolaryngol. 2022 Mar-Apr;88(2):194-203. doi: 10.1016/j.bjorl.2020.05.029. Epub 2020 Jul 21.
4
Diagnosing Conductive Dysfunction in Infants Using Wideband Acoustic Immittance: Validation and Development of Predictive Models.
J Speech Lang Hear Res. 2019 Sep 20;62(9):3607-3619. doi: 10.1044/2019_JSLHR-H-19-0084. Epub 2019 Sep 13.
5
Eustachian Tube Dysfunction and Wideband Absorbance Measurements at Tympanometric Peak Pressure and 0 daPa.
J Am Acad Audiol. 2019 Oct;30(9):781-791. doi: 10.3766/jaaa.18002. Epub 2018 Nov 14.
6
Wrinkling of Tympanic Membrane Under Unbalanced Pressure.
J Appl Mech. 2017 Apr;84(4):0410021-410026. doi: 10.1115/1.4035858. Epub 2017 Feb 8.
7
3D displacement of the middle ear ossicles in the quasi-static pressure regime using new X-ray stereoscopy technique.
Hear Res. 2016 Oct;340:60-68. doi: 10.1016/j.heares.2015.12.003. Epub 2015 Dec 23.
8
Experimental study of vibrations of gerbil tympanic membrane with closed middle ear cavity.
J Assoc Res Otolaryngol. 2013 Aug;14(4):467-81. doi: 10.1007/s10162-013-0389-9. Epub 2013 Apr 27.
10
Effects of ear-canal pressurization on middle-ear bone- and air-conduction responses.
Hear Res. 2010 May;263(1-2):204-15. doi: 10.1016/j.heares.2009.11.013. Epub 2009 Nov 26.

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验