Nobili R, Mammano F
Dipartimento di Fisica G. Galilei, Università di Padova, Italy.
J Acoust Soc Am. 1996 Apr;99(4 Pt 1):2244-55. doi: 10.1121/1.415412.
Nonlinearities affecting cochlear mechanics produce appreciable compression in the basilar membrane (BM) input/output (I/O) functions at the characteristic frequency for sound-pressure levels (SPLs) as low as 20 dB (re: 20 microPa). This is thought to depend upon saturation of the outer hair cell (OHC) mechanoelectrical transducer (MET). This hypothesis was tested by solving a nonlinear integrodifferential equation that describes the BM vibration in an active cochlea. The equation extends a previously developed linear approach [Mammano and Nobili, J. Acoust. Soc. Am. 93, 3320-3332 (1993)], here modified to include saturating MET, with a few corrections mainly concerning tectorial membrane resonance and OHC coupling to the BM. Stationary solutions were computed by iteration in the frequency domain for a wide range of input SPLs, generating BM I/O functions, frequency response envelopes, and two-tone distortion products. Traveling-wave amplitude envelopes were also computed for a fixed suppressor and several suppressed tones in order to evidence the phenomenon of two-tone suppression (frequency masking) at the mechanical level. All results accord nicely with experimental data.
影响耳蜗力学的非线性特性,在声压级(SPL)低至20 dB(相对于20微帕)时,会在基底膜(BM)输入/输出(I/O)函数的特征频率处产生明显的压缩。这被认为取决于外毛细胞(OHC)机械电换能器(MET)的饱和。通过求解一个描述有源耳蜗中BM振动的非线性积分微分方程来检验这一假设。该方程扩展了先前开发的线性方法[Mammano和Nobili,《美国声学学会杂志》93,3320 - 3332(1993)],此处进行了修改以纳入饱和MET,并做了一些修正,主要涉及盖膜共振以及OHC与BM的耦合。通过在频域中对广泛的输入声压级进行迭代计算稳态解,生成BM I/O函数、频率响应包络和双音失真产物。还针对固定的抑制音和几个被抑制的音调计算行波振幅包络,以便在机械层面证明双音抑制(频率掩蔽)现象。所有结果与实验数据非常吻合。