Matches in SemOpenAlex for { <https://semopenalex.org/work/W1986197741> ?p ?o ?g. }
- W1986197741 endingPage "22" @default.
- W1986197741 startingPage "13" @default.
- W1986197741 abstract "Regions of low seismic velocity and high shear anisotropies in cold subducted slabs have often been related to anisotropic fabrics in hydrous phases mainly induced by slab deformation. The interpretation of these seismic anomalies in terms of hydration thus relies on a better knowledge of the elasticity and plastic deformation mechanisms of candidate hydrous phases. Here we investigate the development of lattice preferred orientations (LPO) in phase D [MgSi2H2O6, 10–18 wt% H2O], the ultimate water carrier in hydrous subducted peridotite. The samples were deformed non-hydrostatically up to 48 GPa in a diamond anvil cell and the texture and strength were obtained from analysis of the X-ray diffraction patterns collected in radial diffraction geometry. We find that at low strains the layered structure of phase D displays strong 0001 texture, where the stacking fault axis (c-axis) preferentially align parallel to the compression axis. A subsidiary 101¯0 texture develops at higher strains. Plasticity simulations in polycrystalline aggregates using a viscoplastic self-consistent model suggest that these LPO patterns are consistent with shape preferred orientation mechanism during the first compaction steps and, with dominant easy glide on basal planes and harder first order pyramidal slip, respectively, upon further compression. We find that phase D displays the lowest strength and the highest anisotropy among phases in hydrous peridotite in the uppermost lower mantle and might thus control the shear wave anisotropy generated in subducted slabs below the transition zone. We further evaluate the effect of textured phase D on the seismic velocity structure and shear wave anisotropy of deformed hydrous peridotite and compare the results to seismic observations in Tonga subduction. We show that 16 vol% of phase D in hydrous subducted peridotite is required to explain the negative velocity anomalies of 3%, the extent of shear wave splitting (0.9±0.3%) and the shear wave ray polarization geometry (VSH>VSV) observed in a detached fragment of the Tonga slab laying sub-horizontally below the transition zone. Seismic observations may thus place constraints on the degree of hydration of the Tonga slab beyond the transition zone, leading to the requirement that a minimum of 1.2 wt% H2O is retained in the slab by hydrous peridotite below 670 km depth." @default.
- W1986197741 created "2016-06-24" @default.
- W1986197741 creator A5010201082 @default.
- W1986197741 creator A5014871357 @default.
- W1986197741 creator A5027992808 @default.
- W1986197741 creator A5036024554 @default.
- W1986197741 creator A5043705732 @default.
- W1986197741 creator A5071640130 @default.
- W1986197741 date "2013-09-01" @default.
- W1986197741 modified "2023-10-17" @default.
- W1986197741 title "Shear wave anisotropy in textured phase D and constraints on deep water recycling in subduction zones" @default.
- W1986197741 cites W1489332407 @default.
- W1986197741 cites W1573118131 @default.
- W1986197741 cites W1779599893 @default.
- W1986197741 cites W1844467579 @default.
- W1986197741 cites W1967532236 @default.
- W1986197741 cites W1969107252 @default.
- W1986197741 cites W1972494137 @default.
- W1986197741 cites W1978215462 @default.
- W1986197741 cites W1978534444 @default.
- W1986197741 cites W1981983779 @default.
- W1986197741 cites W1982927349 @default.
- W1986197741 cites W1983529332 @default.
- W1986197741 cites W1983874564 @default.
- W1986197741 cites W1986291818 @default.
- W1986197741 cites W1987155253 @default.
- W1986197741 cites W1989866459 @default.
- W1986197741 cites W1991824779 @default.
- W1986197741 cites W1995399191 @default.
- W1986197741 cites W1996098539 @default.
- W1986197741 cites W1998013424 @default.
- W1986197741 cites W2005639250 @default.
- W1986197741 cites W2005795881 @default.
- W1986197741 cites W2015014198 @default.
- W1986197741 cites W2017047182 @default.
- W1986197741 cites W2017588800 @default.
- W1986197741 cites W2017649324 @default.
- W1986197741 cites W2021320095 @default.
- W1986197741 cites W2021524596 @default.
- W1986197741 cites W2035663695 @default.
- W1986197741 cites W2036480686 @default.
- W1986197741 cites W2038350507 @default.
- W1986197741 cites W2039018897 @default.
- W1986197741 cites W2039411624 @default.
- W1986197741 cites W2040744554 @default.
- W1986197741 cites W2043314553 @default.
- W1986197741 cites W2048393452 @default.
- W1986197741 cites W2050910306 @default.
- W1986197741 cites W2054361858 @default.
- W1986197741 cites W2056705631 @default.
- W1986197741 cites W2062018184 @default.
- W1986197741 cites W2062082433 @default.
- W1986197741 cites W2062142590 @default.
- W1986197741 cites W2066263948 @default.
- W1986197741 cites W2066962256 @default.
- W1986197741 cites W2069978795 @default.
- W1986197741 cites W2070150031 @default.
- W1986197741 cites W2076363669 @default.
- W1986197741 cites W2079187415 @default.
- W1986197741 cites W2081856581 @default.
- W1986197741 cites W2085431263 @default.
- W1986197741 cites W2087510985 @default.
- W1986197741 cites W2090708936 @default.
- W1986197741 cites W2095049247 @default.
- W1986197741 cites W2095204440 @default.
- W1986197741 cites W2100220551 @default.
- W1986197741 cites W2108597026 @default.
- W1986197741 cites W2114411594 @default.
- W1986197741 cites W2114939486 @default.
- W1986197741 cites W2118172271 @default.
- W1986197741 cites W2119332646 @default.
- W1986197741 cites W2128818414 @default.
- W1986197741 cites W2129435610 @default.
- W1986197741 cites W2139632408 @default.
- W1986197741 cites W2140053748 @default.
- W1986197741 cites W2147592251 @default.
- W1986197741 cites W2159921174 @default.
- W1986197741 cites W2167204394 @default.
- W1986197741 cites W2322516431 @default.
- W1986197741 cites W2341435833 @default.
- W1986197741 cites W4241132310 @default.
- W1986197741 doi "https://doi.org/10.1016/j.epsl.2013.06.036" @default.
- W1986197741 hasPublicationYear "2013" @default.
- W1986197741 type Work @default.
- W1986197741 sameAs 1986197741 @default.
- W1986197741 citedByCount "17" @default.
- W1986197741 countsByYear W19861977412013 @default.
- W1986197741 countsByYear W19861977412014 @default.
- W1986197741 countsByYear W19861977412015 @default.
- W1986197741 countsByYear W19861977412016 @default.
- W1986197741 countsByYear W19861977412017 @default.
- W1986197741 countsByYear W19861977412020 @default.
- W1986197741 countsByYear W19861977412021 @default.
- W1986197741 countsByYear W19861977412022 @default.
- W1986197741 countsByYear W19861977412023 @default.
- W1986197741 crossrefType "journal-article" @default.
- W1986197741 hasAuthorship W1986197741A5010201082 @default.
- W1986197741 hasAuthorship W1986197741A5014871357 @default.