Affiliation:
1. Hawai ´ i Institute of Geophysics and Planetology, University of Hawai ´ i, Mānoa, Hawai ´ i 1 96740, USA
2. Idaho National Laboratory 2 , Idaho Falls, Idaho 83415, USA
Abstract
For prompt detection of large (>1 kt) above-ground explosions, infrasound microphone networks and arrays are deployed at surveyed locations across the world. Denser regional and local networks are deployed for smaller explosions, however, they are limited in number and are often deployed temporarily for experiments. With the expanded interest in smaller yield explosions targeted at vulnerable areas such as population centers and key infrastructures, the need for more dense microphone networks has increased. An “attritable” (affordable, reusable, and replaceable) and flexible alternative can be provided by smartphone networks. Explosion signals from a fuel air explosive (thermobaric bomb) and a high explosive with trinitrotoluene equivalent yields of 6.35 and 3.63 kg, respectively, were captured on both an infrasound microphone and a network of smartphones. The resulting waveforms were compared in time, frequency, and time-frequency domains. The acoustic waveforms collected on smartphones produced a filtered explosion pulse due to the smartphone's diminishing frequency response at infrasound frequencies (<20 Hz) and was found difficult to be used with explosion characterization methods utilizing waveform features (peak overpressure, impulse, etc.). However, the similarities in time frequency representations and additional sensor inputs are promising for other explosion signal identification and analysis. As an example, a method utilizing the relative acoustic amplitudes for source localization using the smartphone sensor network is presented.
Funder
Office of Defense Nuclear Nonproliferation
Publisher
Acoustical Society of America (ASA)
Reference67 articles.
1. Ahern,
T.,
Casey,
R.,
Barnes,
D.,
Benson,
R.,
Knight,
T., and
Trabant,
C. (2009). “
SEED reference manual,” version 2.4, Incorporated Research Institutions for Seismology, Washington, DC, http://www.fdsn.org/pdf/SEEDManual_V2.4.pdf (Last viewed August 22, 2024).
2. The MyShake platform: A global vision for earthquake early warning;Pure Appl. Geophys.,2020
3. A method for estimating the amplitude response of smartphone built-in microphone sensors below 4 kHz;J. Acoust. Soc. Am.,2019
4. Evidence for short temporal atmospheric variations observed by infrasonic signals: 1. The troposphere;Earth Space Sci.,2022