A laboratory nanoseismological study on deep-focus earthquake micromechanics
暂无分享,去创建一个
Mark Rivers | Nadege Hilairet | Ahmed Addad | Yanbin Wang | Tony Yu | Alexandre Schubnel | A. Addad | F. Brunet | M. Rivers | Yanbin Wang | A. Schubnel | Lupei Zhu | D. Deldicque | Lupei Zhu | Feng Shi | Julien Gasc | Damien Deldicque | Ziyu Li | Fabrice Brunet | N. Hilairet | Tony Yu | F. Shi | J. Gasc | Ziyu Li
[1] Liping Wang,et al. Yield strength enhancement of MgO by nanocrystals , 2005 .
[2] J. Byerlee. Brittle-ductile transition in rocks , 1968 .
[3] D. Marsan,et al. The long precursory phase of most large interplate earthquakes , 2013 .
[4] P. Burnley,et al. A new self-organizing mechanism for deep-focus earthquakes , 1989, Nature.
[5] H. Kawakatsu,et al. Significance of non-double couple components of deep and intermediate-depth earthquakes: implications from moment tensor inversions of long-period seismic waves , 1993 .
[6] E. Okal,et al. Deep earthquakes beneath the Fiji Basin, SW Pacific: Earth's most intense deep seismicity in stagnant slabs , 1998 .
[7] T. Lay,et al. Systematic non‐double‐couple components of earthquake mechanisms: The role of fault zone irregularity , 1994 .
[8] P. Shearer,et al. Supershear rupture in a Mw 6.7 aftershock of the 2013 Sea of Okhotsk earthquake , 2014, Science.
[9] S. Yoshioka,et al. Metastable olivine wedge and deep dry cold slab beneath southwest Japan , 2011 .
[10] I. Vardoulakis,et al. The thickness of shear bands in granular materials , 1987 .
[11] C. Langmuir,et al. Insights into the Mechanism of Intermediate-Depth Earthquakes from Source Properties as Imaged by Back Projection of Multiple Seismic Phases , 2011 .
[12] D. Faulkner,et al. Permeability control on transient slip weakening during gypsum dehydration: Implications for earthquakes in subduction zones , 2016 .
[13] Y. Ben‐Zion,et al. Parametrization of general seismic potency and moment tensors for source inversion of seismic waveform data , 2013 .
[14] Yanbin Wang,et al. The deformation-DIA: A new apparatus for high temperature triaxial deformation to pressures up to 15 GPa , 2003 .
[15] Y. Syono,et al. High-pressure research : application to earth and planetary sciences , 1992 .
[16] D. Wells,et al. New empirical relationships among magnitude, rupture length, rupture width, rupture area, and surface displacement , 1994, Bulletin of the Seismological Society of America.
[17] M. Wyss,et al. Fractal dimension and b value on creeping and locked patches of the San Andreas fault near Parkfield, California , 2004 .
[18] H. Kanamori,et al. Rupture complexity of the 1994 Bolivia and 2013 Sea of Okhotsk deep earthquakes , 2014 .
[19] Thomas C. Hanks,et al. M-logA Observations for Recent Large Earthquakes , 2008 .
[20] F. Waldhauser,et al. A Double-Difference Earthquake Location Algorithm: Method and Application to the Northern Hayward Fault, California , 2000 .
[21] H. Green,et al. The Mechanics of Deep Earthquakes , 1995 .
[22] D. Weidner,et al. Elastic properties of the olivine and spinel polymorphs of Mg2GeO4, and evaluation of elastic analogues , 1983 .
[23] S. Myers,et al. Rupture Characteristics of the Deep Bolivian Earthquake of 9 June 1994 and the Mechanism of Deep-Focus Earthquakes , 1995, Science.
[24] J. Handin,et al. Chapter 13: Observations on Fracture and a Hypothesis of Earthquakes , 1960 .
[25] S. Puzzi,et al. From criticality to final collapse: Evolution of the ''b-value" from 1.5 to 1.0 , 2009 .
[26] K. Masuda,et al. Potential of phyllosilicate dehydration and dehydroxylation reactions to trigger earthquakes , 2009 .
[27] D. Kohlstedt. Properties of Rocks and Minerals – Constitutive Equations, Rheological Behavior, and Viscosity of Rocks , 2007 .
[28] D. L. Anderson,et al. Theoretical Basis of Some Empirical Relations in Seismology by Hiroo Kanamori And , 1975 .
[29] H. Houston. 4.11 – Deep Earthquakes , 2007 .
[30] B. Gutenberg,et al. Frequency of Earthquakes in California , 1944, Nature.
[31] Z. Zhan. Gutenberg–Richter law for deep earthquakes revisited: A dual-mechanism hypothesis , 2016 .
[32] Masayuki Obayashi,et al. Stagnant slabs in the upper and lower mantle transition region , 2001 .
[33] D. Prior,et al. Faulting associated with the olivine to spinel transformation in Mg2GeO4 and its implications for deep‐focus earthquakes , 1991 .
[34] R. Jeanloz,et al. Deep-Focus Earthquakes and Recycling of Water into the Earth's Mantle , 1991, Science.
[35] Frank Westferro,et al. High-pressure x-ray tomography microscope: Synchrotron computed microtomography at high pressure and temperature , 2005 .
[36] D. Dreger,et al. Rupture processes of large deep-focus earthquakes from inversion of moment rate functions , 1999 .
[37] Ioannis Vardoulakis,et al. A gradient flow theory of plasticity for granular materials , 1991 .
[38] D. Zhao,et al. Detection of metastable olivine wedge in the western Pacific slab and its geodynamic implications , 2015 .
[39] Mark L. Rivers,et al. Yield strength and strain hardening of MgO up to 8 GPa measured in the deformation-DIA with monochromatic X-ray diffraction , 2004 .
[40] Masaki Ogawa,et al. Shear instability in a viscoelastic material as the cause of deep focus earthquakes , 1987 .
[41] Paul G. Richards,et al. Quantitative Seismology: Theory and Methods , 1980 .
[42] C. Frohlich,et al. The Nature of Deep-Focus Earthquakes , 1989 .
[43] Kathleen A. Issen,et al. Conditions for compaction bands in porous rock , 2000 .
[44] D. Yuen,et al. Rheological structure and deformation of subducted slabs in the mantle transition zone: implications for mantle circulation and deep earthquakes , 2001 .
[45] B. Hobbs,et al. Plastic instabilities: Implications for the origin of intermediate and deep focus earthquakes , 1988 .
[46] J. Rice,et al. CONDITIONS FOR THE LOCALIZATION OF DEFORMATION IN PRESSURE-SENSITIVE DILATANT MATERIALS , 1975 .
[47] Deep Earthquakes , 2001, Science.
[48] W. Durham,et al. Mantle Phase Changes and Deep-Earthquake Faulting in Subducting Lithosphere , 1991, Science.
[49] S. Kirby. Localized polymorphic phase transformations in high‐pressure faults and applications to the physical mechanism of deep earthquakes , 1987 .
[50] Hongfeng Yang,et al. Fault-Plane Determination of the 18 April 2008 Mount Carmel, Illinois, Earthquake by Detecting and Relocating Aftershocks , 2009 .
[51] C. Frohlich. Deep Earthquakes: Properties of intermediate- and deep-focus earthquakes , 2006 .
[52] J. Rudnicki,et al. Reexamination of fault angles predicted by shear localization theory , 1998 .
[53] D. Pollard,et al. Anticrack inclusion model for compaction bands in sandstone , 2005 .
[54] David W. Simpson,et al. Earthquake prediction : an international review , 1981 .
[55] W. F. Brace,et al. Limits on lithospheric stress imposed by laboratory experiments , 1980 .
[56] K. Bozhilov,et al. Phase transformation and nanometric flow cause extreme weakening during fault slip , 2015 .
[57] A. Leith,et al. Deep-Focus Earthquakes and Their Geological Significance , 1936, The Journal of Geology.
[58] David D. Pollard,et al. Anticrack model for pressure solution surfaces , 1981 .
[59] E. Riggs,et al. A new class of microstructures which lead to transformation‐induced faulting in magnesium germanate , 2005 .
[60] G. Wilquet,et al. Sources of noise in high resolution tracking with scintillating fibres , 1990 .
[61] G. Hirth,et al. Dehydration of lawsonite could directly trigger earthquakes in subducting oceanic crust , 2016, Nature.
[62] L. Wen,et al. Global large deep-focus earthquakes: Source process and cascading failure of shear instability as a unified physical mechanism , 2015 .
[63] John B. Rundle,et al. Derivation of the complete Gutenberg‐Richter magnitude‐frequency relation using the principle of scale invariance , 1989 .
[64] S. Peacock. Are the lower planes of double seismic zones caused by serpentine dehydration in subducting oceanic mantle , 2001 .
[65] Anderson,et al. Frictional melting during the rupture of the 1994 bolivian earthquake , 1998, Science.
[66] Harry W. Green,et al. Anticrack-associated faulting at very high pressure in natural olivine , 1991, Nature.
[67] Harry W. Green,et al. Deep-Focus Earthquake Analogs Recorded at High Pressure and Temperature in the Laboratory , 2013, Science.
[68] D. Amitrano. Variability in the power-law distributions of rupture events , 2012 .
[69] Jean Braun,et al. Subducting slabs: Jellyfishes in the Earth's mantle , 2010 .
[70] Bruce E. Shaw,et al. Dynamics of earthquake faults , 1993, adap-org/9307001.
[71] Bruce E. Shaw,et al. Short Note Constant Stress Drop from Small to Great Earthquakes in Magnitude-Area Scaling , 2009 .