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Optimization of a thermal flow sensor for acoustic particle velocity measurements

机译:优化用于声粒子速度测量的热流传感器

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摘要

In this paper, a thermal flow sensor consisting of two or three heated wires, the Microflown, is treated for application to acoustic measurements. It is sensitive to flow ("particle velocity"), contrary to conventional microphones that measure acoustic pressures. A numerical analysis, allowing for detailed parametric studies, is presented. The results are experimentally verified. Consequently, improved devices were fabricated, and also sensors with a new geometry consisting of three wires, instead of the usual two, of which the central wire is relatively most heated. These devices are the best performing Microflowns to date with a frequency range extending from 0 to over 5 kHz and a minimum detectable particle velocity level of about 70 nm/s at 2 to 5 kHz (i.e., 3 dB PVL or SPL, corresponding to a pressure of 3.1/spl middot/10/sup -5/ Pa at a free field specific acoustic impedance).
机译:在本文中,由两根或三根加热丝(Microflown)组成的热流量传感器经过处理,可应用于声学测量。与测量声压的常规麦克风相反,它对流量(“粒子速度”)敏感。进行了数值分析,可以进行详细的参数研究。结果通过实验验证。因此,制造了改进的设备,并且还制造了具有新几何形状的传​​感器,该传感器具有三根导线,而不是通常的两根导线,其中中心导线受热最多。这些设备是迄今为止性能最好的微流子,其频率范围从0扩展到5 kHz以上,在2至5 kHz时可检测的最小粒子速度水平约为70 nm / s(即3 dB PVL或SPL,对应于在自由场特定声阻抗下,压力为3.1 / spl middot / 10 / sup -5 / Pa)。

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