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声带刚度和声学负载对单层声带模型流动诱导振动的影响。

Influence of vocal fold stiffness and acoustic loading on flow-induced vibration of a single-layer vocal fold model.

作者信息

Zhang Zhaoyan, Neubauer Juergen, Berry David A

机构信息

UCLA School of Medicine, 31-24 Rehabilitation Center 1000 Veteran Ave., Los Angeles, CA 90095-1794.

出版信息

J Sound Vib. 2009 Apr 24;322(1-2):299-313. doi: 10.1016/j.jsv.2008.11.009.

Abstract

The flow-induced vibrations of a single-layer vocal fold model were investigated as a function of vocal fold stiffness, and subglottal and supraglottal acoustic loading. Previously, it was reported that the single-layer vocal fold model failed to vibrate when short, clinically-relevant tracheal tubes were used. Moreover, it was reported that the model had a propensity to be acoustically driven, and aerodynamically driven vibration was observed only when a vertical restraint was applied superiorly to the vocal folds. However, in this study involving a wider range of source/tract conditions, the previous conclusions were shown to apply only for the special case of a stiff vocal fold model, for which self-oscillation occurred only when the vocal fold vibration synchronized to either a subglottal or supraglottal resonance. For a more general case, when vocal fold stiffness was decreased, the model did exhibit self-oscillation at short tracheal tubes, and no vertical restraint was needed to induce aerodynamically driven phonation. Nevertheless, the vocal fold vibration transitioned from aerodynamically-driven to acoustically-driven vibration when one of the subglottal resonance frequencies approximated one of the natural frequencies of the vocal folds. In this region, strong superior-inferior vibrations were observed, the phonation threshold pressure was significantly reduced, and the phonation onset frequency was heavily influenced by the dominant acoustic resonance. For acoustically-driven phonation, a compliant subglottal system always lowered phonation threshold. However, an inertive vocal tract could either increase or decrease phonation threshold pressure, depending on the phonation frequency.

摘要

研究了单层声带模型的流致振动与声带刚度、声门下和声门上声学负载的关系。此前有报道称,当使用短的、临床相关的气管插管时,单层声带模型无法振动。此外,有报道称该模型倾向于受声学驱动,仅当在声带上方施加垂直约束时才观察到气动驱动振动。然而,在这项涉及更广泛的声源/声道条件的研究中,先前的结论被证明仅适用于声带僵硬模型的特殊情况,对于该模型,只有当声带振动与声门下或声门上共振同步时才会发生自激振荡。对于更一般的情况,当声带刚度降低时,该模型在短气管插管时确实表现出自激振荡,并且不需要垂直约束来诱导气动驱动发声。然而,当声门下共振频率之一接近声带固有频率之一时,声带振动从气动驱动转变为声学驱动振动。在这个区域,观察到强烈的上下振动,发声阈值压力显著降低,发声起始频率受到主导声共振的严重影响。对于声学驱动发声,顺应性声门下系统总是会降低发声阈值。然而,惯性声道根据发声频率的不同,可能会增加或降低发声阈值压力。

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