Page 46 - 《振动工程学报》2025年第8期
P. 46
1686 振 动 工 程 学 报 第 38 卷
[9] 张捷, 肖新标, 张玉梅, 等 . 100% 低地板列车车内噪 ing, 2021, 34(4): 828-837.
声传递特性分析[J]. 振动工程学报, 2015, 28(4): 541- [20] RUSINEK R, KECIK K, SZYMANSKI M. Effect of
549. magnet position in an electromagnetic transducer for the
ZHANG Jie, XIAO Xinbiao, ZHANG Yumei, et al. middle ear implant[J]. Journal of Sound and Vibration,
Study on transfer path characteristic of interior noise of 2023, 559: 117766.
100% low-floor railway train[J]. Journal of Vibration [21] ELLIOTT S J, NI G J, VERSCHUUR C A. Model‑
Engineering, 2015, 28(4): 541-549. ling the effect of round window stiffness on residual
[10] BYRNE D, DILLON H, CHING T, et al. NAL-NL1 hearing after cochlear implantation[J]. Hearing Re‑
procedure for fitting nonlinear hearing aids: characteris‑ search, 2016, 341: 155-167.
tics and comparisons with other procedures[J]. Journal [22] STIEGER C, ROSOWSKI J J, NAKAJIMA H H.
of the American Academy of Audiology, 2001, 12(1): Comparison of forward (ear-canal) and reverse (round-
37-51. window) sound stimulation of the cochlea[J]. Hearing
[11] MOORE B C J, GLASBERG B R, STONE M A. Research, 2013, 301: 105-114.
Use of a loudness model for hearing aid fitting: Ⅲ . A [23] YANG S G, XU D, LIU X L. Evaluation of round win‑
general method for deriving initial fittings for hearing dow stimulation performance in otosclerosis using finite
aids with multi-channel compression[J]. British Journal element modeling[J]. Computational and Mathematical
of Audiology, 1999, 33(4): 241-258. Methods in Medicine, 2016, 2016(1): 3603207.
[12] MOORE B C J, GLASBERG B R, STONE M A. De‑ [24] XUE L, LIU H G, WANG W B, et al. The role of
velopment of a new method for deriving initial fittings third windows on human sound transmission of forward
for hearing aids with multi-channel compression: CAM‑ and reverse stimulations: a lumped-parameter approach
EQ2-HF[J]. International Journal of Audiology, 2010, [J]. The Journal of the Acoustical Society of America,
49(3): 216-227. 2020, 147(3): 1478.
[13] MOORE B C J, GLASBERG B R, BAER T. A mod‑ [25] 高雷, 梁俊毅, 姚文娟, 等 . 被动螺旋耳蜗力学模型
el for the prediction of thresholds, loudness, and partial
[J]. 物理学报, 2023, 72(7): 273-282.
loudness[J]. Journal of the Audio Engineering Society,
GAO Lei, LIANG Junyi, YAO Wenjuan, et al. Com‑
1997, 45(4): 224-239.
putational mathematics model of passive spiral cochlea
[14] MOORE B C J, GLASBERG B R. A revised model of
[J]. Acta Physica Sinica, 2023, 72(7): 273-282.
loudness perception applied to cochlear hearing loss[J].
[26] ELLIOTT S J, NI G J. An elemental approach to mod‑
Hearing Research, 2004, 188(1-2): 70-88.
elling the mechanics of the cochlea[J]. Hearing Re‑
[15] MOORE B C J, GLASBERG B R. Modeling binaural
search, 2018, 360: 14-24.
loudness[J]. The Journal of the Acoustical Society of
[27] SAREMI A, STENFELT S. Effect of metabolic pres‑
America, 2007, 121(3): 1604-1612.
byacusis on cochlear responses: a simulation approach
[16] MOORE B C J, JERVIS M, HARRIES L, et al.
using a physiologically-based model[J]. The Journal of
Testing and refining a loudness model for time-varying
the Acoustical Society of America, 2013, 134(4): 2833-
sounds incorporating binaural inhibition[J]. The Journal
2851.
of the Acoustical Society of America, 2018, 143(3):
[28] WYSOCKI J. Dimensions of the human vestibular and
1504.
tympanic scalae[J]. Hearing Research, 1999, 135(1-2):
[17] American Society of America. Procedure for the compu‑
39-46.
tation of loudness of steady sounds: ANSI S3.4 — 2007
[29] LIU Y W, NEELY S T. Distortion product emissions
[S]. New York: American National Standards Insti‑
from a cochlear model with nonlinear mechanoelectrical
tute, 2007.
transduction in outer hair cells[J]. The Journal of the
[18] International Organization for Standardization. Acous‑
Acoustical Society of America, 2010, 127(4): 2420-
tics — Normal equal-loudness-level contours: ISO 226:
2432.
2023[S]. Geneva: International Organization for Stan‑
dardization, 2023. [30] YOON Y J, PURIA S, STEELE C R. Intracochlear
[19] 赵玲玲, 魏静, 张爱强, 等 . 集成式动力总成振动噪声 pressure and derived quantities from a three-dimensional
分析与主动控制研究[J]. 振动工程学报, 2021, 34(4): model[J]. The Journal of the Acoustical Society of
828-837. America, 2007, 122(2): 952-966.
ZHAO Lingling, WEI Jing, ZHANG Aiqiang, et al. [31] RAMAMOORTHY S, DEO N V, GROSH K. A
Vibro-acoustic analysis and active control of integrated mechano-electro-acoustical model for the cochlea: re‑
powertrain systems[J]. Journal of Vibration Engineer‑ sponse to acoustic stimuli[J]. The Journal of the Acous‑

