4.6 Article

Rotation, Strain, and Translation Sensors Performance Tests with Active Seismic Sources

期刊

SENSORS
卷 21, 期 1, 页码 -

出版社

MDPI
DOI: 10.3390/s21010264

关键词

rotation sensors; strain sensors; seismology; instrumentation

资金

  1. European Research Council [339991]
  2. European Union's Horizon 2020 research and innovation program [821881]
  3. German Federal Institute for Geosciences and Natural Resources, Hannover
  4. SNF Spark project [190837]
  5. European Union [821115]
  6. European Research Council (ERC) [339991] Funding Source: European Research Council (ERC)
  7. H2020 Societal Challenges Programme [821881] Funding Source: H2020 Societal Challenges Programme

向作者/读者索取更多资源

This experiment aimed to establish high-quality standards for rotation and strain measurements in seismology. Through a comparison of sensor performance, it was found that most sensors exhibit a high level of coherence and waveform similarity within a specific frequency range. Additionally, the experimental design and sensor reliability were critically evaluated, highlighting the urgent need for reliable reference sensors.
Interest in measuring displacement gradients, such as rotation and strain, is growing in many areas of geophysical research. This results in an urgent demand for reliable and field-deployable instruments measuring these quantities. In order to further establish a high-quality standard for rotation and strain measurements in seismology, we organized a comparative sensor test experiment that took place in November 2019 at the Geophysical Observatory of the Ludwig-Maximilians University Munich in Furstenfeldbruck, Germany. More than 24 different sensors, including three-component and single-component broadband rotational seismometers, six-component strong-motion sensors and Rotaphone systems, as well as the large ring laser gyroscopes ROMY and a Distributed Acoustic Sensing system, were involved in addition to 14 classical broadband seismometers and a 160 channel, 4.5 Hz geophone chain. The experiment consisted of two parts: during the first part, the sensors were co-located in a huddle test recording self-noise and signals from small, nearby explosions. In a second part, the sensors were distributed into the field in various array configurations recording seismic signals that were generated by small amounts of explosive and a Vibroseis truck. This paper presents details on the experimental setup and a first sensor performance comparison focusing on sensor self-noise, signal-to-noise ratios, and waveform similarities for the rotation rate sensors. Most of the sensors show a high level of coherency and waveform similarity within a narrow frequency range between 10 Hz and 20 Hz for recordings from a nearby explosion signal. Sensor as well as experiment design are critically accessed revealing the great need for reliable reference sensors.

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