Seismic attenuation and stress on the San Andreas Fault at Parkfield: are we critical yet?
Language
English
Obiettivo Specifico
OST3 Vicino alla faglia
Status
Published
JCR Journal
JCR Journal
Peer review journal
Yes
Journal
Issue/vol(year)
/12 (2024)
ISSN
2296-6463
Publisher
INGV
Pages (printed)
1349425
Date Issued
March 22, 2024
Abstract
The Parkfield transitional segment of the San Andreas Fault (SAF) is characterized by the production of frequent quasi-periodical M6 events that break the very same asperity. The last Parkfield mainshock occurred on 28 September 2004, 38 years after the 1966 earthquake, and after the segment showed a ∼22 years average recurrence time. The main reason for the much longer interevent period between the last two earthquakes is thought to be the reduction of the Coulomb stress from the M6.5 Coalinga earthquake of 2 May 1983, and the M6 Nuñez events of June 11th and 22 July 1983. Plausibly, the transitional segment of the SAF at Parkfield is now in the late part of its seismic cycle and current observations may all be relative to a state of stress close to criticality. However, the behavior of the attenuation parameter in the last few years seems substantially different from the one that characterized the years prior to the 2004 mainshock. A few questions arise: (i) Does a detectable preparation phase for the Parkfield mainshocks exist, and is it the same for all events? (ii) How dynamically/kinematically similar are the quasi-periodic occurrences of the Parkfield mainshocks? (iii) Are some dynamic/kinematic characteristics of the next mainshock predictable from the analysis of current data? (e.g., do we expect the epicenter of the next failure to be co-located to that of 2004?) (iv) Should we expect the duration of the current interseismic period to be close to the 22-year “undisturbed” average value? We respond to the questions listed above by analyzing the non-geometric attenuation of direct S-waves along the transitional segment of the SAF at Parkfield, in the close vicinity of the fault plane, between January 2001 and November 2023. Of particular interest is the preparatory behavior of the attenuation parameter as the 2004 mainshock approached, on both sides of the SAF. We also show that the non-volcanic tremor activity modulates the seismic attenuation in the area, and possibly the seismicity along the Parkfield fault segment, including the occurrence of the mainshocks.
References
Agnew, D., and Sieh, K. (1978). A documentary study of the felt effects of the great California earthquake of 1857. Seismol. Soc. Am. Bull. 68, 1717–1729.
Google Scholar
Akinci, A., Malagnini, L., Herrmann, R. B., Pino, N. A., Scognamiglio, L., and Eyidogan, H. (2001). High-frequency ground motion in the Erzincan region, Turkey: inferences from small earthquakes. Bull. Seismol. Soc. Am. 91 (6), 1446–1455. doi:10.1785/0120010125
CrossRef Full Text | Google Scholar
Bakun, W., and McEvilly, T. (1984). Recurrence models and Parkfield, California, earthquakes. J. Geophys. Res. 89, 3051–3058. doi:10.1029/jb089ib05p03051
CrossRef Full Text | Google Scholar
Bakun, W. H., Aagaard, B., Dost, B., Ellsworth, W. L., Hardebeck, J. L., Harris, R. A., et al. (2005). Implications for prediction and hazard assessment from the 2004 Parkfield earthquake. Nature 437, 969–974. doi:10.1038/nature04067
PubMed Abstract | CrossRef Full Text | Google Scholar
Bakun, W. H., and Lindh, A. G. (1985). The Parkfield, California, earthquake prediction experiment. Science 229 (4714), 619–624. doi:10.1126/science.229.4714.619
PubMed Abstract | CrossRef Full Text | Google Scholar
Barbosa, N. D., Hunziker, J., Lissa, S., H Saenger, E., and Lupi, M. (2019). Fracture unclogging: a numerical study of seismically induced viscous shear stresses in fluid saturated fractured rocks. J. Geophys. Res. Solid Earth 124 (11), 11705–11727. doi:10.1029/2019JB017984
CrossRef Full Text | Google Scholar
Beeler, N. M., Lockner, D. L., and Hickman, S. H. (2001). A simple stick-slip and creep-slip model for repeating earthquakes and its implication for microearthquakes at Parkfield. Bull. Seismol. Soc. Am. 91 (6), 1797–1804. doi:10.1785/0120000096
CrossRef Full Text | Google Scholar
Ben-Zion, Y., and Zaliapin, I. (2020). Localization and coalescence of seismicity before large earthquakes. Geophys. J. Int. 223, 561–583. doi:10.1093/gji/ggaa315
CrossRef Full Text | Google Scholar
Bletery, Q., and Nocquet, J.-M. (2023). The precursory phase of large earthquakes. Science 381 (6655), 297–301. doi:10.1126/science.adg2565
PubMed Abstract | CrossRef Full Text | Google Scholar
Bolton, D. C., Marone, C., Saffer, D., and Trugman, D. T. (2023). Foreshock properties illuminate nucleation processes of slow and fast laboratory earthquakes. Nat. Commun. 14, 3859. doi:10.1038/s41467-023-39399-0
PubMed Abstract | CrossRef Full Text | Google Scholar
Bouchon, M., Karabulut, H., Aktar, M., Özalaybey, S., Schmittbuhl, J., and Bouin, M. P. (2011). Extended nucleation of the 1999 M w 7.6 Izmit earthquake. Science 331, 877–880. doi:10.1126/science.1197341
PubMed Abstract | CrossRef Full Text | Google Scholar
Brenguier, F., Campillo, M., Hadziioannou, C., Shapiro, N. M., Nadeau, R. M., and Larose, E. (2008). Postseismic relaxation along the san Andreas Fault at Parkfield from continuous seismological observations. Science 321, 1478–1481. doi:10.1126/science.1160943
PubMed Abstract | CrossRef Full Text | Google Scholar
Brodsky, E. E., and Lay, T. (2014). Recognizing foreshocks from the 1 April 2014 Chile earthquake. Science 344, 700–702. doi:10.1126/science.1255202
PubMed Abstract | CrossRef Full Text | Google Scholar
Brodsky, E. E., Roeloffs, E., Woodcock, D., Gall, I., and Manga, M. (2003). A mechanism for sustained groundwater pressure changes induced by distant earthquakes. J. Geophys. Res. 108 (B8), 2390. doi:10.1029/2002JB002321
CrossRef Full Text | Google Scholar
Cartwright, D. E., and Longuet-Higgins, M. S. (1956). The statistical distribution of the maxima of a random function. Proc. R. Soc. A 237, 212–232.
Google Scholar
Cattania, C., and Segall, P. (2021). Precursory slow slip and foreshocks on rough faults. J. Geophys. Res. Solid Earth 126, e2020JB020430. doi:10.1029/2020jb020430
CrossRef Full Text | Google Scholar
Chen, K. H., Bürgmann, R., and Nadeau, R. M. (2013). Do earthquakes talk to each other? Triggering and interaction of repeating sequences at Parkfield. J. Geophys. Res. Solid Earth 118 (1), 165–182. doi:10.1029/2012jb009486
CrossRef Full Text | Google Scholar
Chen, X., and Shearer, P. M. (2013). California foreshock sequences suggest aseismic triggering process. Geophys. Res. Lett. 40, 2602–2607. doi:10.1002/grl.50444
CrossRef Full Text | Google Scholar
O’Connell, R. J., and Budiansky, B. (1977). Viscoelastic properties of fluid-saturated cracked solids. J. Geophys. Res. 82 (36), 5719–5735.
Google Scholar
D'Amico, S., Koper, K. D., Herrmann, R. B., Akinci, A., and Malagnini, L. (2010). Imaging the rupture of the Mw 6.3 April 6, 2009 L'Aquila, Italy earthquake using back-projection of teleseismic P-waves. Geophys. Res. Lett. 37 (3). doi:10.1029/2009gl042156
CrossRef Full Text | Google Scholar
Dodge, D. A., Beroza, G. C., and Ellsworth, W. L. (1996). Detailed observations of California foreshock sequences: implications for the earthquake initiation process. J. Geophys. Res. Solid Earth 101, 22371–22392. doi:10.1029/96jb02269
CrossRef Full Text | Google Scholar
Ellsworth, W. L., and Bulut, F. (2018). Nucleation of the 1999 Izmit earthquake by a triggered cascade of foreshocks. Nat. Geosci. 11, 531–535. doi:10.1038/s41561-018-0145-1
CrossRef Full Text | Google Scholar
Guilhem, A., and Nadeau, R. M. (2012). Episodic tremors and deep slow-slip events in Central California. EPSL 357-358, 1–10. doi:10.1016/j.epsl.2012.09.028
CrossRef Full Text | Google Scholar
Johanson, I. A., and Burgmann, R. (2010). Coseismic and postseismic slip from the 2003 San Simeon earthquake and their effects on backthrust slip and the 2004 Parkfield earthquake. J. Geophys. Res. 115, B07411. doi:10.1029/2009JB006599
CrossRef Full Text | Google Scholar
Johnson, C. W., Fu, Y., and Burgmann, R. (2017). Stress models of the annual hydrospheric, atmospheric, thermal, and tidal loading cycles on California faults: perturbation of background stress and changes in seismicity. J. Geophys. Res. Solid Earth 122 (10), 625. doi:10.1002/2017JB014778
CrossRef Full Text | Google Scholar
Kagan, Y. Y. (1997). Statistical aspects of Parkfield earthquake sequence and Parkfield prediction experiment. Tectonophysics 270 (3-4), 207–219. doi:10.1016/s0040-1951(96)00210-7
CrossRef Full Text | Google Scholar
Kato, A., Fukuda, J. I., Nakagawa, S., and Obara, K. (2016). Foreshock migration preceding the 2016 M<sub>w</sub> 7.0 Kumamoto earthquake, Japan. Geophys. Res. Lett. 43, 8945–8953. doi:10.1002/2016gl070079
CrossRef Full Text | Google Scholar
Kato, A., Obara, K., Igarashi, T., Tsuruoka, H., Nakagawa, S., and Hirata, N. (2012). Propagation of slow slip leading up to the 2011 Mw9.0 Tohoku-Oki earthquake. Science 335, 705–708. doi:10.1126/science.1215141
PubMed Abstract | CrossRef Full Text | Google Scholar
Kelly, C. M., Rietbrock, A., Faulkner, D. R., and Nadeau, R. M. (2013). Temporal changes in attenuation associated with the 2004 M6.0 Parkfield earthquake. J. Geophys. Res. Solid Earth 118, 630–645. doi:10.1002/jgrb.50088
CrossRef Full Text | Google Scholar
Li, Y., Bürgmann, R., and Taira, T. (2023). Spatiotemporal variations of surface deformation, shallow creep rate, and slip partitioning between the San Andreas and southern Calaveras Fault. J. Geophys. Res. Solid Earth 128, e2022JB025363. doi:10.1029/2022JB025363
CrossRef Full Text | Google Scholar
Liu, W., and Manga, M. (2009). Changes in permeability caused by dynamic stresses in fractured sandstone. Geophys. Res. Lett. 36, L20307. doi:10.1029/2009GL039852
CrossRef Full Text | Google Scholar
Lucente, F. P., De Gori, P., Margheriti, L., Piccinini, D., Di Bona, M., Chiarabba, C., et al. (2010). Temporal variation of seismic velocity and anisotropy before the 2009 MW 6.3 L’Aquila earthquake. Italy, Geol. 38, 1015–1018. doi:10.1130/G31463.1
CrossRef Full Text | Google Scholar
Malagnini, L., Dreger, D. S., Bürgmann, R., Munafò, I., and Sebastiani, G. (2019). Modulation of seismic attenuation at Parkfield, before and after the 2004 M6 earthquake. J. Geophys. Res. Solid Earth 124, 5836–5853. doi:10.1029/2019JB017372
CrossRef Full Text | Google Scholar
Malagnini, L., Dreger, D. S., Nadeau, R. M., Munafò, I., and Cocco, M. (2021). On the heterogeneity of the earthquake rupture. Geophys. J. Int. 225 (3), 1771–1781. doi:10.1093/gji/ggaa528
CrossRef Full Text | Google Scholar
Malagnini, L., Herrmann, R. B., and Di Bona, M. (2000). Ground motion scaling in the Apennines (Italy). Bull. Seism. Soc. Am. 90, 1062–1081. doi:10.1785/0119990152
CrossRef Full Text | Google Scholar
Malagnini, L., Mayeda, K., Uhrhammer, R., Akinci, A., and Herrmann, R. B. (2007). A regional ground-motion excitation/attenuation model for the San Francisco region. Bull. Seismol. Soc. Am. 97 (3), 843–862. doi:10.1785/0120060101
CrossRef Full Text | Google Scholar
Malagnini, L., and Parsons, T. (2020). Seismic attenuation monitoring of a critically stressed San Andreas fault. Geophys. Res. Lett. 47. doi:10.1029/2020GL089201
CrossRef Full Text | Google Scholar
Malagnini, L., Parsons, T., Munafò, I., Mancini, S., Segou, M., and Geist, E. L. (2022). Crustal permeability changes inferred from seismic attenuation: impacts on multi-mainshock sequences. Front. Earth Sci. 10, 963689. doi:10.3389/feart.2022.963689
CrossRef Full Text | Google Scholar
Manga, M., Beresnev, I., Brodsky, E. E., Elkhoury, J. E., Elsworth, D., Ingebritsen, S. E., et al. (2012). Changes in permeability caused by transient stresses: field observations, experiments, and mechanisms. Rev. Geophys. 50, RG2004. doi:10.1029/2011RG000382
CrossRef Full Text | Google Scholar
Manga, M., and Brodsky, E. (2006). Seismic triggering of eruptions in the far field: volcanoes and geysers. Annu. Rev. Earth Planet. Sci. 34, 263–291. doi:10.1146/annurev.earth.34.031405.125125
CrossRef Full Text | Google Scholar
Mavrommatis, A. P., Segall, P., and Johnson, K. M. (2017). A physical model for interseismic erosion of locked fault asperities. J. Geophys. Res. 122 (10), 8326–8346. doi:10.1002/2017jb014533
CrossRef Full Text | Google Scholar
Mileti, D. S., and Fitzpatrick, C. (1992). The causal sequence of risk communication in the Parkfield earthquake prediction experiment. Risk Anal. 12 (3), 393–400. doi:10.1111/j.1539-6924.1992.tb00691.x
CrossRef Full Text | Google Scholar
Nadeau, R. M. (2015). Ambient tremor activity triggered by the 24 august 2014, M6.0 south Napa earthquake in the parkfield-cholame region of California. Seismol. Res. Lett. 86 (2B), 635.
Google Scholar
Nadeau, R. M., and Dolenc, D. (2005). Non-volcanic tremors deep beneath the san Andreas fault. Science 307, 389. doi:10.1126/science.1107142
PubMed Abstract | CrossRef Full Text | Google Scholar
Nadeau, R. M., Foxall, W., and McEvilly, (1995). Clustering and periodic recurrence of microearthquakes on the san Andreas Fault at Parkfield, California. Science 267 (5197), 503–507. doi:10.1126/science.267.5197.503
PubMed Abstract | CrossRef Full Text | Google Scholar
Nadeau, R. M., and Guilhem, A. (2009). Nonvolcanic tremor evolution and the san Simeon and Parkfield, California, earthquakes. Science 325, 191–193. doi:10.1126/science.1174155
PubMed Abstract | CrossRef Full Text | Google Scholar
Nadeau, R. M., and Johnson, L. R. (1998). Seismological studies at Parkfield VI: moment release rates and estimates of source parameters for small repeating earthquakes. Bull. Seismol. Soc. Am. 88 (3), 790–814. doi:10.1785/bssa0880030790
CrossRef Full Text | Google Scholar
Nadeau, R. M., and McEvilly, T. V. (1999). Fault slip rates at depth from recurrence intervals of repeating microearthquakes. Science 285, 718–721. doi:10.1126/science.285.5428.718
PubMed Abstract | CrossRef Full Text | Google Scholar
Nadeau, R. M., and McEvilly, T. V. (2004). Periodic pulsing of characteristic microearthquakes on the san Andreas Fault. Science 303 (5655), 220–222. doi:10.1126/science.1090353
PubMed Abstract | CrossRef Full Text | Google Scholar
Peng, Z., Shelly, D. R., and Ellsworth, W. L. (2015). Delayed dynamic triggering of deep tremor along the Parkfield-Cholame section of the San Andreas Fault following the 2014 M6.0 South Napa earthquake. Geophys. Res. Lett. 42, 7916–7922. doi:10.1002/2015GL065277
CrossRef Full Text | Google Scholar
Raoof, M., Herrmann, R. B., and Malagnini, L. (1999). Attenuation and excitation of three-component ground motion in Southern California. Bull. Seism. Soc. Am. 89, 888–902. doi:10.1785/bssa0890040888
CrossRef Full Text | Google Scholar
Roeloffs, E., and Langbein, J. (1994). The earthquake prediction experiment at Parkfield, California. Rev. Geophys. 32 (3), 315–336. doi:10.1029/94rg01114
CrossRef Full Text | Google Scholar
Roeloffs, E. A. (1998). Persistent water level changes in a well near Parkfield, California, due to local and distant earthquakes. J. Geophys. Res. 103 (B1), 869–889. doi:10.1029/97jb02335
CrossRef Full Text | Google Scholar
Scholz, C. (2019). The mechanics of earthquakes and faulting. Cambridge: Cambridge University Press. doi:10.1017/9781316681473
CrossRef Full Text | Google Scholar
Sebastiani, G., and Malagnini, L. (2020). Forecasting the next Parkfield mainshock on the san Andreas Fault (California). J. Ecol. Nat. Resour. 4. issue 3. doi:10.23880/jenr-16000218
CrossRef Full Text | Google Scholar
Sibson, R. H. (2009). Rupturing in overpressured crust during compressional inversion—the case from NE Honshu, Japan. Tectonophysics 473, 404–416. doi:10.1016/j.tecto.2009.03.016
CrossRef Full Text | Google Scholar
Sieh, K. (1978a). Central California foreshocks of the great 1857 earthquake. Seismol. Soc. Am. Bull. 68, 1731–1749.
Google Scholar
Sieh, K. (1978b). Slip along the san Andreas Fault associated with the great 1857 earthquake. Seismol. Soc. Am. Bull. 68, 1421–1428.
Google Scholar
Spudich, P., and Oppenheimer, D. (1986). “Dense seismograph array observations of earthquake rupture dynamics,” in Earthquake source mechanics. Editors S. Das, J. Boatwright, and C. H. Scholz doi:10.1029/GM037p0285
CrossRef Full Text | Google Scholar
Sugan, M., Kato, A., Miyake, H., Nakagawa, S., and Vuan, A. (2014). The preparatory phase of the 2009 Mw 6.3 L'Aquila earthquake by improving the detection capability of low-magnitude foreshocks. Geophys. Res. Lett. 41, 6137–6144. doi:10.1002/2014gl061199
CrossRef Full Text | Google Scholar
Taira, T. A., Silver, P. G., Niu, F., and Nadeau, R. M. (2009). Remote triggering of fault-strength changes on the San Andreas fault at Parkfield. Nature 461 (7264), 636–639. doi:10.1038/nature08395
PubMed Abstract | CrossRef Full Text | Google Scholar
Toda, S., and Stein, R. S. (2002). Response of the San Andreas fault to the 1983 Coalinga-Nuñez earthquakes: an application of interaction-based probabilities for Parkfield. J. Geophys. Res. 107 (B6). ESE 6-1-ESE 6-16. doi:10.1029/2001jb000172
CrossRef Full Text | Google Scholar
Townend, J., and Zoback, M. (2000). How faulting keeps the crust strong. Geology 28 (5), 399–402. doi:10.1130/0091-7613(2000)28<399:hfktcs>2.0.co;2
CrossRef Full Text | Google Scholar
Vasseur, J., Wadsworth, F. B., Heap, M. J., Main, I. G., Lavalle, Y., and Dingwell, D. B. (2017). Does an inter-flaw length control the accuracy of rupture forecasting in geological materials? Earth Planet. Sci. Lett. 475, 181–189. doi:10.1016/j.epsl.2017.07.011
CrossRef Full Text | Google Scholar
Yoon, C. E., Yoshimitsu, N., Ellsworth, W. L., and Beroza, G. C. (2019). Foreshocks and mainshock nucleation of the 1999 M<i>w</i> 7.1 hector mine, California, earthquake. J. Geophys. Res. Solid Earth 124, 1569–1582. doi:10.1029/2018jb016383
CrossRef Full Text | Google Scholar
Zechar, J. D., and Nadeau, R. M. (2012). Predictability of repeating earthquakes near Parkfield, California. Geophys. J. Int. 190 (1), 457–462. doi:10.1111/j.1365-246x.2012.05481.x
Google Scholar
Akinci, A., Malagnini, L., Herrmann, R. B., Pino, N. A., Scognamiglio, L., and Eyidogan, H. (2001). High-frequency ground motion in the Erzincan region, Turkey: inferences from small earthquakes. Bull. Seismol. Soc. Am. 91 (6), 1446–1455. doi:10.1785/0120010125
CrossRef Full Text | Google Scholar
Bakun, W., and McEvilly, T. (1984). Recurrence models and Parkfield, California, earthquakes. J. Geophys. Res. 89, 3051–3058. doi:10.1029/jb089ib05p03051
CrossRef Full Text | Google Scholar
Bakun, W. H., Aagaard, B., Dost, B., Ellsworth, W. L., Hardebeck, J. L., Harris, R. A., et al. (2005). Implications for prediction and hazard assessment from the 2004 Parkfield earthquake. Nature 437, 969–974. doi:10.1038/nature04067
PubMed Abstract | CrossRef Full Text | Google Scholar
Bakun, W. H., and Lindh, A. G. (1985). The Parkfield, California, earthquake prediction experiment. Science 229 (4714), 619–624. doi:10.1126/science.229.4714.619
PubMed Abstract | CrossRef Full Text | Google Scholar
Barbosa, N. D., Hunziker, J., Lissa, S., H Saenger, E., and Lupi, M. (2019). Fracture unclogging: a numerical study of seismically induced viscous shear stresses in fluid saturated fractured rocks. J. Geophys. Res. Solid Earth 124 (11), 11705–11727. doi:10.1029/2019JB017984
CrossRef Full Text | Google Scholar
Beeler, N. M., Lockner, D. L., and Hickman, S. H. (2001). A simple stick-slip and creep-slip model for repeating earthquakes and its implication for microearthquakes at Parkfield. Bull. Seismol. Soc. Am. 91 (6), 1797–1804. doi:10.1785/0120000096
CrossRef Full Text | Google Scholar
Ben-Zion, Y., and Zaliapin, I. (2020). Localization and coalescence of seismicity before large earthquakes. Geophys. J. Int. 223, 561–583. doi:10.1093/gji/ggaa315
CrossRef Full Text | Google Scholar
Bletery, Q., and Nocquet, J.-M. (2023). The precursory phase of large earthquakes. Science 381 (6655), 297–301. doi:10.1126/science.adg2565
PubMed Abstract | CrossRef Full Text | Google Scholar
Bolton, D. C., Marone, C., Saffer, D., and Trugman, D. T. (2023). Foreshock properties illuminate nucleation processes of slow and fast laboratory earthquakes. Nat. Commun. 14, 3859. doi:10.1038/s41467-023-39399-0
PubMed Abstract | CrossRef Full Text | Google Scholar
Bouchon, M., Karabulut, H., Aktar, M., Özalaybey, S., Schmittbuhl, J., and Bouin, M. P. (2011). Extended nucleation of the 1999 M w 7.6 Izmit earthquake. Science 331, 877–880. doi:10.1126/science.1197341
PubMed Abstract | CrossRef Full Text | Google Scholar
Brenguier, F., Campillo, M., Hadziioannou, C., Shapiro, N. M., Nadeau, R. M., and Larose, E. (2008). Postseismic relaxation along the san Andreas Fault at Parkfield from continuous seismological observations. Science 321, 1478–1481. doi:10.1126/science.1160943
PubMed Abstract | CrossRef Full Text | Google Scholar
Brodsky, E. E., and Lay, T. (2014). Recognizing foreshocks from the 1 April 2014 Chile earthquake. Science 344, 700–702. doi:10.1126/science.1255202
PubMed Abstract | CrossRef Full Text | Google Scholar
Brodsky, E. E., Roeloffs, E., Woodcock, D., Gall, I., and Manga, M. (2003). A mechanism for sustained groundwater pressure changes induced by distant earthquakes. J. Geophys. Res. 108 (B8), 2390. doi:10.1029/2002JB002321
CrossRef Full Text | Google Scholar
Cartwright, D. E., and Longuet-Higgins, M. S. (1956). The statistical distribution of the maxima of a random function. Proc. R. Soc. A 237, 212–232.
Google Scholar
Cattania, C., and Segall, P. (2021). Precursory slow slip and foreshocks on rough faults. J. Geophys. Res. Solid Earth 126, e2020JB020430. doi:10.1029/2020jb020430
CrossRef Full Text | Google Scholar
Chen, K. H., Bürgmann, R., and Nadeau, R. M. (2013). Do earthquakes talk to each other? Triggering and interaction of repeating sequences at Parkfield. J. Geophys. Res. Solid Earth 118 (1), 165–182. doi:10.1029/2012jb009486
CrossRef Full Text | Google Scholar
Chen, X., and Shearer, P. M. (2013). California foreshock sequences suggest aseismic triggering process. Geophys. Res. Lett. 40, 2602–2607. doi:10.1002/grl.50444
CrossRef Full Text | Google Scholar
O’Connell, R. J., and Budiansky, B. (1977). Viscoelastic properties of fluid-saturated cracked solids. J. Geophys. Res. 82 (36), 5719–5735.
Google Scholar
D'Amico, S., Koper, K. D., Herrmann, R. B., Akinci, A., and Malagnini, L. (2010). Imaging the rupture of the Mw 6.3 April 6, 2009 L'Aquila, Italy earthquake using back-projection of teleseismic P-waves. Geophys. Res. Lett. 37 (3). doi:10.1029/2009gl042156
CrossRef Full Text | Google Scholar
Dodge, D. A., Beroza, G. C., and Ellsworth, W. L. (1996). Detailed observations of California foreshock sequences: implications for the earthquake initiation process. J. Geophys. Res. Solid Earth 101, 22371–22392. doi:10.1029/96jb02269
CrossRef Full Text | Google Scholar
Ellsworth, W. L., and Bulut, F. (2018). Nucleation of the 1999 Izmit earthquake by a triggered cascade of foreshocks. Nat. Geosci. 11, 531–535. doi:10.1038/s41561-018-0145-1
CrossRef Full Text | Google Scholar
Guilhem, A., and Nadeau, R. M. (2012). Episodic tremors and deep slow-slip events in Central California. EPSL 357-358, 1–10. doi:10.1016/j.epsl.2012.09.028
CrossRef Full Text | Google Scholar
Johanson, I. A., and Burgmann, R. (2010). Coseismic and postseismic slip from the 2003 San Simeon earthquake and their effects on backthrust slip and the 2004 Parkfield earthquake. J. Geophys. Res. 115, B07411. doi:10.1029/2009JB006599
CrossRef Full Text | Google Scholar
Johnson, C. W., Fu, Y., and Burgmann, R. (2017). Stress models of the annual hydrospheric, atmospheric, thermal, and tidal loading cycles on California faults: perturbation of background stress and changes in seismicity. J. Geophys. Res. Solid Earth 122 (10), 625. doi:10.1002/2017JB014778
CrossRef Full Text | Google Scholar
Kagan, Y. Y. (1997). Statistical aspects of Parkfield earthquake sequence and Parkfield prediction experiment. Tectonophysics 270 (3-4), 207–219. doi:10.1016/s0040-1951(96)00210-7
CrossRef Full Text | Google Scholar
Kato, A., Fukuda, J. I., Nakagawa, S., and Obara, K. (2016). Foreshock migration preceding the 2016 M<sub>w</sub> 7.0 Kumamoto earthquake, Japan. Geophys. Res. Lett. 43, 8945–8953. doi:10.1002/2016gl070079
CrossRef Full Text | Google Scholar
Kato, A., Obara, K., Igarashi, T., Tsuruoka, H., Nakagawa, S., and Hirata, N. (2012). Propagation of slow slip leading up to the 2011 Mw9.0 Tohoku-Oki earthquake. Science 335, 705–708. doi:10.1126/science.1215141
PubMed Abstract | CrossRef Full Text | Google Scholar
Kelly, C. M., Rietbrock, A., Faulkner, D. R., and Nadeau, R. M. (2013). Temporal changes in attenuation associated with the 2004 M6.0 Parkfield earthquake. J. Geophys. Res. Solid Earth 118, 630–645. doi:10.1002/jgrb.50088
CrossRef Full Text | Google Scholar
Li, Y., Bürgmann, R., and Taira, T. (2023). Spatiotemporal variations of surface deformation, shallow creep rate, and slip partitioning between the San Andreas and southern Calaveras Fault. J. Geophys. Res. Solid Earth 128, e2022JB025363. doi:10.1029/2022JB025363
CrossRef Full Text | Google Scholar
Liu, W., and Manga, M. (2009). Changes in permeability caused by dynamic stresses in fractured sandstone. Geophys. Res. Lett. 36, L20307. doi:10.1029/2009GL039852
CrossRef Full Text | Google Scholar
Lucente, F. P., De Gori, P., Margheriti, L., Piccinini, D., Di Bona, M., Chiarabba, C., et al. (2010). Temporal variation of seismic velocity and anisotropy before the 2009 MW 6.3 L’Aquila earthquake. Italy, Geol. 38, 1015–1018. doi:10.1130/G31463.1
CrossRef Full Text | Google Scholar
Malagnini, L., Dreger, D. S., Bürgmann, R., Munafò, I., and Sebastiani, G. (2019). Modulation of seismic attenuation at Parkfield, before and after the 2004 M6 earthquake. J. Geophys. Res. Solid Earth 124, 5836–5853. doi:10.1029/2019JB017372
CrossRef Full Text | Google Scholar
Malagnini, L., Dreger, D. S., Nadeau, R. M., Munafò, I., and Cocco, M. (2021). On the heterogeneity of the earthquake rupture. Geophys. J. Int. 225 (3), 1771–1781. doi:10.1093/gji/ggaa528
CrossRef Full Text | Google Scholar
Malagnini, L., Herrmann, R. B., and Di Bona, M. (2000). Ground motion scaling in the Apennines (Italy). Bull. Seism. Soc. Am. 90, 1062–1081. doi:10.1785/0119990152
CrossRef Full Text | Google Scholar
Malagnini, L., Mayeda, K., Uhrhammer, R., Akinci, A., and Herrmann, R. B. (2007). A regional ground-motion excitation/attenuation model for the San Francisco region. Bull. Seismol. Soc. Am. 97 (3), 843–862. doi:10.1785/0120060101
CrossRef Full Text | Google Scholar
Malagnini, L., and Parsons, T. (2020). Seismic attenuation monitoring of a critically stressed San Andreas fault. Geophys. Res. Lett. 47. doi:10.1029/2020GL089201
CrossRef Full Text | Google Scholar
Malagnini, L., Parsons, T., Munafò, I., Mancini, S., Segou, M., and Geist, E. L. (2022). Crustal permeability changes inferred from seismic attenuation: impacts on multi-mainshock sequences. Front. Earth Sci. 10, 963689. doi:10.3389/feart.2022.963689
CrossRef Full Text | Google Scholar
Manga, M., Beresnev, I., Brodsky, E. E., Elkhoury, J. E., Elsworth, D., Ingebritsen, S. E., et al. (2012). Changes in permeability caused by transient stresses: field observations, experiments, and mechanisms. Rev. Geophys. 50, RG2004. doi:10.1029/2011RG000382
CrossRef Full Text | Google Scholar
Manga, M., and Brodsky, E. (2006). Seismic triggering of eruptions in the far field: volcanoes and geysers. Annu. Rev. Earth Planet. Sci. 34, 263–291. doi:10.1146/annurev.earth.34.031405.125125
CrossRef Full Text | Google Scholar
Mavrommatis, A. P., Segall, P., and Johnson, K. M. (2017). A physical model for interseismic erosion of locked fault asperities. J. Geophys. Res. 122 (10), 8326–8346. doi:10.1002/2017jb014533
CrossRef Full Text | Google Scholar
Mileti, D. S., and Fitzpatrick, C. (1992). The causal sequence of risk communication in the Parkfield earthquake prediction experiment. Risk Anal. 12 (3), 393–400. doi:10.1111/j.1539-6924.1992.tb00691.x
CrossRef Full Text | Google Scholar
Nadeau, R. M. (2015). Ambient tremor activity triggered by the 24 august 2014, M6.0 south Napa earthquake in the parkfield-cholame region of California. Seismol. Res. Lett. 86 (2B), 635.
Google Scholar
Nadeau, R. M., and Dolenc, D. (2005). Non-volcanic tremors deep beneath the san Andreas fault. Science 307, 389. doi:10.1126/science.1107142
PubMed Abstract | CrossRef Full Text | Google Scholar
Nadeau, R. M., Foxall, W., and McEvilly, (1995). Clustering and periodic recurrence of microearthquakes on the san Andreas Fault at Parkfield, California. Science 267 (5197), 503–507. doi:10.1126/science.267.5197.503
PubMed Abstract | CrossRef Full Text | Google Scholar
Nadeau, R. M., and Guilhem, A. (2009). Nonvolcanic tremor evolution and the san Simeon and Parkfield, California, earthquakes. Science 325, 191–193. doi:10.1126/science.1174155
PubMed Abstract | CrossRef Full Text | Google Scholar
Nadeau, R. M., and Johnson, L. R. (1998). Seismological studies at Parkfield VI: moment release rates and estimates of source parameters for small repeating earthquakes. Bull. Seismol. Soc. Am. 88 (3), 790–814. doi:10.1785/bssa0880030790
CrossRef Full Text | Google Scholar
Nadeau, R. M., and McEvilly, T. V. (1999). Fault slip rates at depth from recurrence intervals of repeating microearthquakes. Science 285, 718–721. doi:10.1126/science.285.5428.718
PubMed Abstract | CrossRef Full Text | Google Scholar
Nadeau, R. M., and McEvilly, T. V. (2004). Periodic pulsing of characteristic microearthquakes on the san Andreas Fault. Science 303 (5655), 220–222. doi:10.1126/science.1090353
PubMed Abstract | CrossRef Full Text | Google Scholar
Peng, Z., Shelly, D. R., and Ellsworth, W. L. (2015). Delayed dynamic triggering of deep tremor along the Parkfield-Cholame section of the San Andreas Fault following the 2014 M6.0 South Napa earthquake. Geophys. Res. Lett. 42, 7916–7922. doi:10.1002/2015GL065277
CrossRef Full Text | Google Scholar
Raoof, M., Herrmann, R. B., and Malagnini, L. (1999). Attenuation and excitation of three-component ground motion in Southern California. Bull. Seism. Soc. Am. 89, 888–902. doi:10.1785/bssa0890040888
CrossRef Full Text | Google Scholar
Roeloffs, E., and Langbein, J. (1994). The earthquake prediction experiment at Parkfield, California. Rev. Geophys. 32 (3), 315–336. doi:10.1029/94rg01114
CrossRef Full Text | Google Scholar
Roeloffs, E. A. (1998). Persistent water level changes in a well near Parkfield, California, due to local and distant earthquakes. J. Geophys. Res. 103 (B1), 869–889. doi:10.1029/97jb02335
CrossRef Full Text | Google Scholar
Scholz, C. (2019). The mechanics of earthquakes and faulting. Cambridge: Cambridge University Press. doi:10.1017/9781316681473
CrossRef Full Text | Google Scholar
Sebastiani, G., and Malagnini, L. (2020). Forecasting the next Parkfield mainshock on the san Andreas Fault (California). J. Ecol. Nat. Resour. 4. issue 3. doi:10.23880/jenr-16000218
CrossRef Full Text | Google Scholar
Sibson, R. H. (2009). Rupturing in overpressured crust during compressional inversion—the case from NE Honshu, Japan. Tectonophysics 473, 404–416. doi:10.1016/j.tecto.2009.03.016
CrossRef Full Text | Google Scholar
Sieh, K. (1978a). Central California foreshocks of the great 1857 earthquake. Seismol. Soc. Am. Bull. 68, 1731–1749.
Google Scholar
Sieh, K. (1978b). Slip along the san Andreas Fault associated with the great 1857 earthquake. Seismol. Soc. Am. Bull. 68, 1421–1428.
Google Scholar
Spudich, P., and Oppenheimer, D. (1986). “Dense seismograph array observations of earthquake rupture dynamics,” in Earthquake source mechanics. Editors S. Das, J. Boatwright, and C. H. Scholz doi:10.1029/GM037p0285
CrossRef Full Text | Google Scholar
Sugan, M., Kato, A., Miyake, H., Nakagawa, S., and Vuan, A. (2014). The preparatory phase of the 2009 Mw 6.3 L'Aquila earthquake by improving the detection capability of low-magnitude foreshocks. Geophys. Res. Lett. 41, 6137–6144. doi:10.1002/2014gl061199
CrossRef Full Text | Google Scholar
Taira, T. A., Silver, P. G., Niu, F., and Nadeau, R. M. (2009). Remote triggering of fault-strength changes on the San Andreas fault at Parkfield. Nature 461 (7264), 636–639. doi:10.1038/nature08395
PubMed Abstract | CrossRef Full Text | Google Scholar
Toda, S., and Stein, R. S. (2002). Response of the San Andreas fault to the 1983 Coalinga-Nuñez earthquakes: an application of interaction-based probabilities for Parkfield. J. Geophys. Res. 107 (B6). ESE 6-1-ESE 6-16. doi:10.1029/2001jb000172
CrossRef Full Text | Google Scholar
Townend, J., and Zoback, M. (2000). How faulting keeps the crust strong. Geology 28 (5), 399–402. doi:10.1130/0091-7613(2000)28<399:hfktcs>2.0.co;2
CrossRef Full Text | Google Scholar
Vasseur, J., Wadsworth, F. B., Heap, M. J., Main, I. G., Lavalle, Y., and Dingwell, D. B. (2017). Does an inter-flaw length control the accuracy of rupture forecasting in geological materials? Earth Planet. Sci. Lett. 475, 181–189. doi:10.1016/j.epsl.2017.07.011
CrossRef Full Text | Google Scholar
Yoon, C. E., Yoshimitsu, N., Ellsworth, W. L., and Beroza, G. C. (2019). Foreshocks and mainshock nucleation of the 1999 M<i>w</i> 7.1 hector mine, California, earthquake. J. Geophys. Res. Solid Earth 124, 1569–1582. doi:10.1029/2018jb016383
CrossRef Full Text | Google Scholar
Zechar, J. D., and Nadeau, R. M. (2012). Predictability of repeating earthquakes near Parkfield, California. Geophys. J. Int. 190 (1), 457–462. doi:10.1111/j.1365-246x.2012.05481.x
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