Published July 2018 | Version Supplemental Material
Journal Article Open

Earthquake nucleation and fault slip complexity in the lower crust of central Alaska

  • 1. ROR icon University of Alaska Fairbanks
  • 2. ROR icon University of Oxford
  • 3. ROR icon California Institute of Technology
  • 4. ROR icon GeoAzur
  • 5. ROR icon University of California, Santa Barbara

Abstract

Earthquakes start under conditions that are largely unknown. In laboratory analogue experiments and continuum models, earthquakes transition from slow-slipping, growing nucleation to fast-slipping rupture. In nature, earthquakes generally start abruptly, with no evidence for a nucleation process. Here we report evidence from a strike-slip fault zone in central Alaska of extended earthquake nucleation and of very-low-frequency earthquakes (VLFEs), a phenomenon previously reported only in subduction zone environments. In 2016, a VLFE transitioned into an earthquake of magnitude 3.7 and was preceded by a 12-hour-long accelerating foreshock sequence. Benefiting from 12 seismic stations deployed within 30 km of the epicentre, we identify coincident radiation of distinct high-frequency and low-frequency waves during 22 s of nucleation. The power-law temporal growth of the nucleation signal is quantitatively predicted by a model in which high-frequency waves are radiated from the vicinity of an expanding slow slip front. The observations reveal the continuity and complexity of slip processes near the bottom of the seismogenic zone of a strike-slip fault system in central Alaska.

Additional Information

© 2018 Macmillan Publishers Limited, part of Springer Nature. Received: 28 November 2017; Accepted: 30 April 2018; Published: 4 June 2018. Seismic instruments, data archiving and data access were supported by the U.S. National Science Foundation grants EAR-1352668 and EAR-1645313, the Alaska Earthquake Center, the IRIS Data Management Center and the PASSCAL Instrument Center. Y.K. was supported by Rutherford Discovery Fellowship from the Royal Society of New Zealand. Author Contributions: All authors contributed to the manuscript. C.T., S.H. and V.S. performed the seismological analyses of the two events. J.H. performed the phase coherence analysis (Fig. 3). Y.K., J.P.A. and J.H. contributed the rate-and-state modelling and interpretation. C.J. performed the source time function estimation. C.T., N.R., K.S. and M.E.W. were responsible for the deployment of FLATS seismic stations. N.R. and S.H. discovered the high-frequency and low-frequency signals for the 2015 event. S.H. discovered the low-frequency foreshock (VLFE) of the 2016 event. Data availability: All seismic data used in this study, notably from the FLATS (XV) seismic network (https://doi.org/10.7914/SN/ZE_2015), are publicly available from the IRIS Data Management Center (http://ds.iris.edu/ds/nodes/dmc/). Expanded results of moment tensor inversions are available in ref. 56. The authors declare no competing interests.

Attached Files

Supplemental Material - 41561_2018_144_MOESM1_ESM.pdf

Files

41561_2018_144_MOESM1_ESM.pdf

Files (8.7 MB)

Name Size
md5:487a19a9340fa02efa00dd90e7b84f51
8.7 MB Preview Download

Additional details

Identifiers

Eprint ID
85647
DOI
10.1038/s41561-018-0144-2
Resolver ID
CaltechAUTHORS:20180405-134047605

Related works

Funding

NSF
EAR-1352668
NSF
EAR-1645313
Alaska Earthquake Center
IRIS Data Management Center
PASSCAL Instrument Center
Royal Society of New Zealand

Dates

Created
2018-06-08
Created from EPrint's datestamp field
Updated
2021-11-15
Created from EPrint's last_modified field