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Dynamics of the Driving Force During the Normal Vocal Fold Vibration Cycle

机译:正常声带振动循环期间驱动力的动态

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Summary Intraglottal pressure is the driving force of vocal fold vibration. Theoretically, simultaneous quantification of glottal area and transglottal airflow allows the calculation of the intraglottal pressure waveform during a single vibration cycle. In this study, we show that, by combining photoglottography (transglottal light transmission) and airflow (Rothenberg mask) measurements during sustained vocal emissions in vivo , the intraglottal pressure wave can be approximated in a way similar to what has been done in models. The results confirm in vivo that the intraglottal pressure is systematically larger during the opening phase than during the closing phase, so that over one whole cycle, the driving force performs net positive work, accounting for sustained vocal fold motion. A component of this driving force asymmetry is related to vocal tract inertance, which also accounts for the skewing of the airflow waveform compared with the area waveform. Furthermore, the intraglottal pressure ratio (opening:closing) increases with voicing intensity, reaches a maximum around 76 dB, and significantly decreases at higher intensities. This rise and fall suggests that there is a range of intensity values in which, mechanically, a maximum of the driving force is imparted to the vocal fold mass. This finding could have implications for voice economy in professional speakers.
机译:声门内压是声带振动的驱动力。理论上,同时量化声门面积和经声门气流可以计算单个振动周期内的声门内压力波形。在这项研究中,我们表明,在体内持续发声期间,通过结合光声门图(跨声门光传输)和气流(罗森伯格面罩)测量,声门内压力波可以以类似于模型中所做的方式进行近似。结果证实,在体内,声门内压在开口阶段比在闭合阶段系统性地大,因此在一个完整的周期内,驱动力执行净正功,解释了声带的持续运动。这种驱动力不对称的一个组成部分与声道惯性有关,这也解释了气流波形与面积波形相比的倾斜。此外,声门内压比(开启:关闭)随着发声强度的增加而增加,在76 dB左右达到最大值,在更高强度时显著降低。这种上升和下降表明,存在一系列强度值,在这些强度值中,机械地将最大驱动力传递给声带质量。这一发现可能会对职业演讲者的声音节约产生影响。

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