压力分布在多通道空气流的状几何体中
Ingo R Titze1, Lynn Maxfield1, Brian Manternach1
1Utah Center for Vocology, The University of Utah, Salt Lake City, Utah.
Journal of voice : official journal of the Voice Foundation
|September 17, 2024
概括
精细的驱动压力对于准确的语音模拟至关重要,特别是对于复杂的声振动和部分接触. 新的方法揭示了超出简化模型的复杂压力梯度.
科学领域:
- 声学 声学 声学 声学
- 生物工程是生物工程.
- 计算流体动力学的流体动力学.
背景情况:
- 精确的语音模拟依赖于理解声动态.
- 以前的模型使用了简化的伯努利压力,对基本振荡有效.
- 复杂的声振动,包括部分接触,需要更复杂的压力建模.
研究的目的:
- 为了改进用于语音模拟的驾驶压力计算.
- 为了研究与复杂模式的不对称声振动期间的压力分布.
- 为了比较压力测绘的计算和实验方法.
主要方法:
- 采用高保真度沉浸边界方法进行计算.
- 在缩放的物理模型上利用压力龙头测量.
- 基于正常的表面振动模式建模的球几何形状.
主要成果:
- 压力分布揭示了声表面的复杂,多方向的梯度.
- 在各种接触模式的计算和实验数据之间发现了定性一致.
- 在多个空气流通道的压力梯度中表现出显著的变化.
结论:
- 简化的伯努利压力模型只有在维持单一的空气流通道时才足够.
- 复杂的球几何形状,多个汇合或分散的空气流通道,需要先进的压力建模.
- 方法之间的定量差异归因于空间采样限制.
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