Citation: | ZHOU Zhiyuan, LIN Jian, ZHANG Fan. Modeling of normal faulting in the subducting plates of the Tonga, Japan, Izu-Bonin and Mariana Trenches: implications for near-trench plate weakening[J]. Acta Oceanologica Sinica, 2018, 37(11): 53-60. doi: 10.1007/s13131-018-1146-z |
Beavan J, Wang X, Holden C, et al. 2010. Near-simultaneous great earthquakes at Tongan megathrust and outer rise in September 2009. Nature, 466(7309):959-963, doi: 10.1038/nature09292
|
Behn M D, Ito G. 2008. Magmatic and tectonic extension at mid-ocean ridges:1. Controls on fault characteristics. Geochemistry, Geophysics, Geosystems, 9(8):Q08O10
|
Buck W R, Lavier L L, Poliakov A N B. 2005. Modes of faulting at mid-ocean ridges. Nature, 434(7034):719-723, doi: 10.1038/nature03358
|
Buck W R, Poliakov A N B. 1998. Abyssal hills formed by stretching oceanic lithosphere. Nature, 392(6673):272-275, doi: 10.1038/32636
|
Christensen D H, Ruff L J. 1983. Outer-rise earthquakes and seismic coupling. Geophysical Research Letters, 10(8):697-700, doi: 10.1029/GL010i008p00697
|
Cundall P A. 1989. Numerical experiments on localization in frictional materials. Ingenieur-archiv, 59(2):148-159, doi: 10.1007/BF00538368
|
De Bremaecker J C. 1977. Is the oceanic lithosphere elastic or viscous? Journal of Geophysical Research, 82:2001-2004, doi: 10.1029/JB082i014p02001
|
Emry E L, Wiens D A. 2015. Incoming plate faulting in the northern and western Pacific and implications for subduction zone water budgets. Earth and Planetary Science Letters, 414:176-186, doi: 10.1016/j.epsl.2014.12.042
|
Faccenda M. 2014. Water in the slab:A trilogy. Tectonophysics, 614(3):1-30
|
Garcia-Castellanos D, Torne M, Fernàndez M. 2000. Slab pull effects from a flexural analysis of the Tonga and Kermadec Trenches (Pacific plate). Geophysical Journal International, 141(2):479-484, doi: 10.1046/j.1365-246x.2000.00096.x
|
Grevemeyer I, Kaul N, Diaz-Naveas J L, et al. 2005. Heat flow and bending-related faulting at subduction trenches:Case studies offshore of Nicaragua and Central Chile. Earth and Planetary Science Letters, 236(1-2):238-248, doi: 10.1016/j.epsl.2005.04.048
|
Grevemeyer I, Ranero C R, Flueh E R, et al. 2007. Passive and active seismological study of bending-related faulting and mantle serpentinization at the Middle America trench. Earth and Planetary Science Letters, 258(3-4):528-542, doi: 10.1016/j.epsl.2007.04.013
|
Han Shuoshuo, Carbotte S M, Canales J P, et al. 2016. Seismic reflection imaging of the Juan de Fuca plate from ridge to trench:New constraints on the distribution of faulting and evolution of the crust prior to subduction. Journal of Geophysical Research, 121(3):1849-1872
|
Hilde T W C. 1983. Sediment subduction versus accretion around the pacific. Tectonophysics, 99(2-4):381-397, doi: 10.1016/0040-1951(83)90114-2
|
Hunter J, Watts A B. 2016. Gravity anomalies, flexure and mantle rheology seaward of circum-Pacific trenches. Geophysical Journal International, 207(1):288-316, doi: 10.1093/gji/ggw275
|
Jaeger J C, Cook N G. 1979. Fundamentals of rock mechanics. London:Chapman and Hall, 513
|
Kanamori H. 1971. Seismological evidence for a lithospheric normal faulting-the Sanriku earthquake of 1933. Physics of the Earth and Planetary Interiors, 4(4):289-300, doi: 10.1016/0031-9201(71)90013-6
|
Kao H, Chen W P. 1996. Seismicity in the outer rise-forearc region and configuration of the subducting lithosphere with special reference to the Japan Trench. Journal of Geophysical Research:Solid Earth, 101(B12):27811-27831, doi: 10.1029/96JB01760
|
Key K, Constable S, Matsuno T, et al. 2012. Electromagnetic detection of plate hydration due to bending faults at the Middle America Trench. Earth and Planetary Science Letters, 351:45-53
|
Kobayashi K, Nakanishi M, Tamaki K, et al. 1998. Outer slope faulting associated with the western Kuril and Japan trenches. Geophysical Journal International, 134(2):356-372, doi: 10.1046/j.1365-246x.1998.00569.x
|
Lavier L L, Buck W R, Poliakov A N B. 1999. Self-consistent rolling-hinge model for the evolution of large-offset low-angle normal faults. Geology, 27(12):1127-1130, doi: 2.3.CO;2>10.1130/0091-7613(1999)027<1127:SCRHMF>2.3.CO;2
|
Lavier L L, Buck W R, Poliakov A N B. 2000. Factors controlling normal fault offset in an ideal brittle layer. Journal of Geophysical Research:Solid Earth, 105(B10):23431-23442, doi: 10.1029/2000JB900108
|
Lay T, Ammon C J, Kanamori H, et al. 2010. The 2009 Samoa-Tonga great earthquake triggered doublet. Nature, 466(7309):964-968, doi: 10.1038/nature09214
|
Lefeldt M, Ranero C R, Grevemeyer I. 2012. Seismic evidence of tectonic control on the depth of water influx into incoming oceanic plates at subduction trenches. Geochemistry, Geophysics, Geosystems, 13(5):Q05013
|
Masson D G. 1991. Fault patterns at outer trench walls. Marine Geophysical Researches, 13(3):209-225, doi: 10.1007/BF00369150
|
Melosh H J. 1978. Dynamic support of the outer rise. Geophysical Research Letters, 5(5):321-324, doi: 10.1029/GL005i005p00321
|
Naliboff J B, Billen M I, Gerya T, et al. 2013. Dynamics of outer rise faulting in oceanic-continental subduction systems. Geochemistry, Geophysics, Geosystems, 14(7):2310-2327, doi: 10.1002/ggge.20155
|
Parsons B, Molnar P. 1976. The origin of outer topographic rises associated with trenches. Geophysical Journal International, 45(3):707-712, doi: 10.1111/j.1365-246X.1976.tb06919.x
|
Poliakov A N B, Buck W R. 1998. Mechanics of stretching elastic-plastic-viscous layers:Applications to slow-spreading mid-ocean ridges. In:Buck W R, Delaney P T, Karson J A, et al, eds. Faulting and Magmatism at Mid-Ocean Ridges. Washington, D.C.:American Geophysical Union, 305-323
|
Poliakov A N B, Cundall P A, Podladchikov Y Y, et al. 1993. An explicit inertial method for the simulation of viscoelastic flow:An evaluation of elastic effects on diapiric flow in two-and three-layers models. In:Stone D B, Runcorn S K, eds. Flow and Creep in the Solar System:Observations, Modeling and Theory. Dordrecht:Springer, 175-195
|
Ranero C R, Morgan J P, McIntosh K, et al. 2003. Bending-related faulting and mantle serpentinization at the Middle America trench. Nature, 425(6956):367-373, doi: 10.1038/nature01961
|
Ranero C, Sallares V. 2004. Geophysical evidence for hydration of the crust and mantle of the Nazca plate during bending at the north Chile Trench. Geology, 32(7):549-552, doi: 10.1130/G20379.1
|
Ranero C R, Villaseñor A, Morgan J P, et al. 2005. Relationship between bend-faulting at trenches and intermediate-depth seismicity. Geochemistry, Geophysics, Geosystems, 6(12):Q12002
|
Ryan W B F, Carbotte S M, Coplan J O, et al. 2009. Global multi-resolution topography synthesis. Geochemistry, Geophysics, Geosystems, 10(3):Q03014
|
Supak S, Bohnenstiehl D R, Buck W R. 2006. Flexing is not stretching:An analogue study of flexure-induced fault populations. Earth and Planetary Science Letters, 246(1-2):125-137, doi: 10.1016/j.epsl.2006.03.028
|
Tilmann F J, Grevemeyer I, Flueh E R, et al. 2008. Seismicity in the outer rise offshore southern Chile:Indication of fluid effects in crust and mantle. Earth and Planetary Science Letters, 269(1-2):41-55, doi: 10.1016/j.epsl.2008.01.044
|
Turcotte D L, Schubert G. 2014. Geodynamics. 3rd ed. Cambridge:Cambridge University Press, 156-158
|
Zhang Fan, Lin Jian, Zhan Wenhuan. 2014. Variations in oceanic plate bending along the Mariana Trench. Earth and Planetary Science Letters, 401:206-214, doi: 10.1016/j.epsl.2014.05.032
|
Zhou Zhiyuan, Lin Jian. 2018. Elasto-plastic deformation and plate weakening due to normal faulting in the subducting plate along the Mariana Trench, Tectonophysics, 734-735, 59-68, doi: 10.1016/j.tecto.2018.04.008
|
Zhou Zhiyuan, Lin Jian, Behn M D, et al. 2015. Mechanism for normal faulting in the subducting plate at the Mariana Trench. Geophysical Research Letters, 42(11):4309-4317, doi: 10.1002/2015GL063917
|