HR: 14:20h
AN: U32B-03 INVITED [PDF]
TI: Implications from Meteoric and Volcanic Infrasound Measured in the Netherlands
AU: * Evers, L
EM: evers@knmi.nl
AF: Royal Netherlands Meteorological Institute, PO Box 201, De Bilt, 3730 AE
Netherlands
AB:
Infrasound observations started in the Netherlands in 1986. Since then, several array configurations and instruments have
been developed, tested and made operational. Currently, three infrasound arrays are continuously measuring infrasound with
in-house developed microbarometers. The array apertures vary from 30 to 1500 meters and the number of instruments from 6 to
16 microbarometers. The inter-array distance ranges from 50 up to 150 km. This dense network of infrasound arrays is used to
distinguish between earthquakes and sources in the atmosphere. Sonic booms, for example, can be experienced in the same
manner as small (gas induced) earthquakes. Furthermore, Comprehensive Nuclear-Test-Ban Treaty (CTBT) related research is
done. Meteors are one of the few natural impulsive sources generating energy in kT TNT equivalent range. Therefore, the study
of meteors is essential to the CTBT where infrasound is applied as monitoring technique. Studies of meteors in the
Netherlands have shown the capability of infrasound to trace a meteor through the stratosphere. The propagation of infrasound
is in first order dependent on the wind and temperature structure of the atmosphere. The meteor's path could be
reconstructed by using ECMWF atmospheric models for wind and temperature. The results were compared to visual observations,
confirming the location, direction and reported origin time. The accuracy of the localization mainly depends on the applied
atmospheric model and array resolution. Successfully applying infrasound depends on the array configuration that should be
based on the -frequency depend- spatial coherence of the signals of interest. The array aperture and inter-element distance
will play a decisive role in detecting low signal-to-noise ratios. This is shown by results from studies on volcanic
infrasound from Mt. Etna (Italy) detected in the Netherlands. Sub-array processing on the 16 element array revealed an
increased detectability of infrasound for small aperture, 800 m, arrays, compared to large aperture, 1500 m, arrays.
DE: 3307 Boundary layer processes
DE: 3360 Remote sensing
DE: 7299 General or miscellaneous
DE: 8419 Eruption monitoring (7280)
DE: 9810 New fields (not classifiable under other headings)
SC: U
MN: 2003 Fall Meeting