Infrasound measurement system for real-time in-situ tornado measurements

Brandon C. White, B. Elbing, Imraan A. Faruque
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Abstract

Abstract. Previous work suggests that acoustic waves at frequencies below human hearing (infrasound) are produced during tornadogenesis and continue through the life of a tornado, which have potential to locate and profile tornadic events and provide a range improvement relative to current radar capabilities, which are the current primary measurement tool. Confirming and identifying the fluid mechanism responsible for infrasonic production has been impeded by limited availability and quality (propagation-related uncertainty) of tornadic infrasound data. This paper describes an effort to increase the number of measurements and reduce the uncertainty in subsequent analysis by equipping storm chasers and first responders in regular proximity to tornadoes with mobile infrasound measurement capabilities. The study focus is the design, calibration, deployment, and analysis of data collected by a Ground-based Local INfrasound Data Acquisition (GLINDA) system that collects and relays data from an infrasound microphone, GPS receiver, and an IMU. GLINDA has been deployed with storm chasers beginning in May 2020 and has provided continuing real-time automated monitoring of spectrum and peak detection. In analysis of sampled severe weather phenomena, the signal measured from an EFU tornado (Lakin, KS) show an elevated broadband signal between 10 and 15 Hz. A significant hail event produced no significant increase infrasound signal despite rotation in the storm. The consistency of these observations with existing fixed array measurements and real-time tools to reduce measurement uncertainty demonstrates the value of acquiring tornado infrasound observations from mobile on-location systems and introduces a capability for real-time processing and display of mobile infrasonic measurements.
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用于龙卷风实时现场测量的次声测量系统
摘要先前的研究表明,在龙卷风形成过程中,频率低于人类听力的声波(次声)会产生,并在龙卷风的整个生命周期中持续存在,这有可能定位和描述龙卷风事件,并提供相对于当前主要测量工具雷达能力的范围改进。龙卷风次声数据的有限可用性和质量(与传播相关的不确定性)阻碍了确认和确定次声产生的流体机制。本文描述了通过在龙卷风附近配备移动次声测量能力的风暴追逐者和第一响应者来增加测量数量并减少后续分析中的不确定性的努力。研究重点是设计、校准、部署和分析由地面局部次声数据采集(GLINDA)系统收集的数据,该系统收集并中继来自次声麦克风、GPS接收器和IMU的数据。从2020年5月开始,GLINDA已与风暴追逐者一起部署,并提供持续的实时自动监测频谱和峰值检测。在对采样的恶劣天气现象的分析中,从EFU龙卷风(Lakin, KS)测量到的信号显示出10到15赫兹之间的高宽带信号。一个重大的冰雹事件尽管在风暴中旋转,但没有产生显著的次声信号增加。这些观测结果与现有固定阵列测量和实时工具的一致性,以减少测量不确定性,证明了从移动现场系统获取龙卷风次声观测的价值,并引入了实时处理和显示移动次声测量的能力。
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