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首页> 外文期刊>Journal of intelligent material systems and structures >A study of active artificial hair cell models inspired by outer hair cell somatic motility
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A study of active artificial hair cell models inspired by outer hair cell somatic motility

机译:受外部毛细胞体细胞运动启发的主动人工毛细胞模型的研究

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The cochlea displays an important, nonlinear amplification of sound-induced oscillations. In mammals, this amplification is largely powered by the somatic motility of the outer hair cells. The resulting cochlear amplifier has three important characteristics useful for hearing: an amplification of responses from low sound pressures, an improvement in frequency selectivity, and an ability to transduce a broad range of sound pressure levels. These useful features can be incorporated into designs for active artificial hair cells, bio-inspired sensors for use as microphones, accelerometers, or other dynamic sensors. The sensor consists of a cantilever beam with piezoelectric actuators. A feedback controller applies a voltage to the actuators to mimic the outer hair cells' somatic motility. This article describes three control laws for an active artificial hair cell inspired by models of the outer hair cells' somatic motility. The first control law is based on a phenomenological model of the cochlea while the second and third models incorporate physiological aspects of the biological cochlea to further improve sensor performance. Simulations show that these models qualitatively reproduce the key aspects of the mammalian cochlea, namely, amplification of oscillations from weak stimuli, higher quality factors, and a wider input dynamic range.
机译:耳蜗显示出重要的,非线性的声音诱发振荡放大。在哺乳动物中,这种扩增很大程度上取决于外毛细胞的体细胞运动。所得的耳蜗放大器具有三个对听力有用的重要特性:来自低声压的响应的放大,频率选择性的改善以及能够转换大范围声压级的能力。这些有用的功能可以并入有源人造毛细胞,用作麦克风的生物启发传感器,加速计或其他动态传感器的设计中。该传感器由带有压电致动器的悬臂梁组成。反馈控制器向致动器施加电压,以模仿外部毛细胞的体细胞运动。本文介绍了受外部毛细胞体细胞运动模型启发的主动人造毛细胞的三种控制规律。第一控制律基于耳蜗的现象学模型,而第二和第三模型则结合了生物耳蜗的生理方面,以进一步改善传感器性能。仿真表明,这些模型定性地再现了哺乳动物耳蜗的关键方面,即,来自弱刺激的振荡放大,更高的品质因子和更宽的输入动态范围。

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