Interaction between Strong Sound Waves and Cloud Droplets: Theoretical Analysis

Author:

Jia Ying-Hui1,Li Fang-Fang1,Fang Kun2,Wang Guang-Qian23,Qiu Jun23

Affiliation:

1. a College of Water Resources and Civil Engineering, China Agricultural University, Beijing, China

2. b State Key Laboratory of Hydroscience and Engineering, Tsinghua University, Beijing, China

3. c State Key Laboratory of Plateau Ecology and Agriculture, Qinghai University, Xining, China

Abstract

AbstractRecently, strong sound wave was proposed to enhance precipitation. The theoretical basis of this proposal has not been effectively studied either experimentally or theoretically. On the basis of the microscopic parameters of atmospheric cloud physics, this paper solved the complex nonlinear differential equation to show the movement characteristics of cloud droplets under the action of sound waves. The motion process of an individual cloud droplet in a cloud layer in the acoustic field is discussed as well as the relative motion between two cloud droplets. The effects of different particle sizes and sound field characteristics on particle motion and collision are studied to analyze the dynamic effects of thunder-level sound waves on cloud droplets. The amplitude of velocity variation has positive correlation with sound pressure level (SPL) and negative correlation with the frequency of the surrounding sound field. Under the action of low-frequency sound waves with sufficient intensity, individual cloud droplets could be forced to oscillate significantly. A droplet smaller than 40 μm can be easily driven by sound waves of 50 Hz and 123.4 dB. The calculation of the collision process of two droplets reveals that the disorder of motion for polydisperse droplets is intensified, resulting in the broadening of the collision time range and spatial range. When the acoustic frequency is less than 100 Hz (at 123.4 dB) or the SPL is greater than 117.4 dB (at 50 Hz), the sound wave can affect the collision of cloud droplets significantly. This study provides a theoretical perspective of the acoustic effect on the microphysics of atmospheric clouds.

Publisher

American Meteorological Society

Subject

Atmospheric Science

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