在合成多层自我振荡的声模型中进行体积测量膜上喷射流场分析
Jacob Michaud-Dorko1, Charles Farbos de Luzan2, Ephraim Gutmark2,3
1Department of Biomedical Engineering, University of Cincinnati, Cincinnati, OH 45221-0070, USA.
概括
三维 (3D) 分析揭示了声道配置如何影响喉空气流动的动态. 增加的气道阻力会改变喷射行为和喉流的对称性,影响语音的产生.
科学领域:
- 语音的生物力学
- 在音化中流体动力学.
- 喉生理学 喉生理学
背景情况:
- 传统的2D方法无法充分捕捉复杂的喉流动力学.
- 了解上喷流的行为对于语音制作研究至关重要.
研究的目的:
- 用先进的速度测量来研究三维 (3D) 喉流场.
- 为了检查声道配置和气道阻力对喉喷气动力学的影响.
- 分析喉流动模式,声效和喉压力之间的关系.
主要方法:
- 采用断层粒子图像速度计 (TPIV) 进行详细的3D流场分析.
- 利用一种合成的多层声模型,具有不同的声道配置.
- 测量了底压力 (Psg),并分析了底流波形和喷气特征.
主要成果:
- 声道的存在降低了最大轴速度和喷射位移,特别是在下方的Psg.
- 较高的PSG在所有配置中增加了轴向速度和喷射位移.
- 与此前的研究相反,状流波形显示出增加的对称性,具有更高的Psg和声道存在.
- 观察到一致的声打开/关闭模式,在相位过渡时有双喷气形成.
结论:
- 声道的配置显著地影响了上气流动力学和上气流模式.
- 较高的子球压力和声道的存在促进了球流的对称性.
- 这些发现支持了喉流倾斜与声效率 (VE) 之间的相关性,在较高的Psg.下降VE.
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