Distributed acoustic sensing of microseismic sources and wave propagation in glaciated terrain

Fabian Walter, Dominik Gräff, Fabian Lindner, Patrick Paitz, Manuela Köpfli, Małgorzata Chmiel, Andreas Fichtner

Nature Communications · 2020 · 264 citations · 47 references

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TL;DR

Records of Alpine microseismicity are a powerful tool to study landscape‑shaping processes and warn against hazardous mass movements, but seismic sensor coverage in Alpine regions is typically insufficient. Dynamic strain measurements in a 1 km long fiber‑optic cable on a glacier surface produce high‑quality seismograms related to glacier flow and nearby rock falls. The DAS system bridges critical observational gaps, precisely locates glacier stick‑slip events within 20–40 m, reveals seismic phases that allow derivation of glacier thickness and bed material properties, and demonstrates the potential of fiber‑optic cables for monitoring glacier dynamics and natural hazards.

Abstract

Abstract Records of Alpine microseismicity are a powerful tool to study landscape-shaping processes and warn against hazardous mass movements. Unfortunately, seismic sensor coverage in Alpine regions is typically insufficient. Here we show that distributed acoustic sensing (DAS) bridges critical observational gaps of seismogenic processes in Alpine terrain. Dynamic strain measurements in a 1 km long fiber optic cable on a glacier surface produce high-quality seismograms related to glacier flow and nearby rock falls. The nearly 500 cable channels precisely locate a series of glacier stick-slip events (within 20–40 m) and reveal seismic phases from which thickness and material properties of the glacier and its bed can be derived. As seismic measurements can be acquired with fiber optic cables that are easy to transport, install and couple to the ground, our study demonstrates the potential of DAS technology for seismic monitoring of glacier dynamics and natural hazards.

References

47