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Antigorite CPO formation mechanism in the shallow wedge mantle: Case studies from the Besshi and Shiraga bodies of the Sanbagawa metamorphic belt in central Shikoku, Japan

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Antigorite CPO formation mechanism in the shallow wedge mantle: Case studies from the Besshi and Shiraga bodies of the Sanbagawa metamorphic belt in central Shikoku, Japan

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  • Research Article
  • Cite Count Icon 131
  • 10.1016/0024-4937(81)90043-8
Carbonaceous material in pelitic schists of the Sanbagawa metamorphic belt in central Shikoku, Japan
  • Jul 1, 1981
  • Lithos
  • Tetsumaru Itaya

Carbonaceous material in pelitic schists of the Sanbagawa metamorphic belt in central Shikoku, Japan

  • Research Article
  • Cite Count Icon 25
  • 10.1016/0040-1951(94)90108-2
Cooling history of the Sanbagawa metamorphic belt inferred from fission track zircon ages
  • Dec 1, 1994
  • Tectonophysics
  • H Shinjoe + 1 more

Cooling history of the Sanbagawa metamorphic belt inferred from fission track zircon ages

  • Research Article
  • Cite Count Icon 50
  • 10.1111/j.1525-1314.2005.00580.x
Progress of actinolite‐forming reactions in mafic schists during retrograde metamorphism: an example from the Sanbagawa metamorphic belt in central Shikoku, Japan
  • Jun 1, 2005
  • Journal of Metamorphic Geology
  • A Okamoto + 1 more

Hydration reactions are direct evidence of fluid–rock interaction during regional metamorphism. In this study, hydration reactions to produce retrograde actinolite in mafic schists are investigated to evaluate the controlling factors on the reaction progress. Mafic schists in the Sanbagawa belt contain amphibole coexisting with epidote, chlorite, plagioclase and quartz. Amphibole typically shows two types of compositional zoning from core to rim: barroisite → hornblende → actinolite in the high‐grade zone, and winchite → actinolite in the low‐grade zone. Both types indicate that amphibole grew during the exhumation stage of the metamorphic belt. Microstructures of amphibole zoning and mass‐balance relations suggest that: (1) the actinolite‐forming reactions proceeded at the expense of the preexisting amphibole; and (2) the breakdown reaction of hornblende consumed more H2O fluid than that of winchite, when one mole of preexisting amphibole was reacted. Reaction progress is indicated by the volume fraction of actinolite to total amphibole, Yact, with the following details: (1) reaction proceeded homogeneously in each mafic layer; (2) the extent of the hornblende breakdown reaction is commonly low (Yact < 0.5), but it increases drastically in the high‐grade part of the garnet zone (Yact > 0.7); and (3) the extent of the winchite breakdown reaction is commonly high (Yact > 0.7). Many microcracks are observed within hornblende, and the extent of hornblende breakdown reaction is correlated with the size reduction of the hornblende core. Brittle fracturing of hornblende may have enhanced retrograde reaction progress by increasing of influx of H2O and the surface area of hornblende. In contrast to high‐grade rocks, the winchite breakdown reaction is well advanced in the low‐grade rocks, where reaction progress is not associated with brittle fracturing of winchite. The high extent of the reaction in the low‐grade rocks may be due to small size of winchite before the reaction.

  • Research Article
  • Cite Count Icon 12
  • 10.2465/ganko1941.73.359
Stability and paragenesis of Fe-Ti oxide minerals and sphene in the basic schists of the Sanbagawa metamorphic belt in central Shikoku, Japan.
  • Jan 1, 1978
  • The Journal of the Japanese Association of Mineralogists, Petrologists and Economic Geologists
  • Tetsumaru Itaya + 1 more

The Sanbagawa basic schists in the Shiragayama area, central Shikoku contain hematite, ilmenite, rutile, sphene and some magnetite. Mineral assemblages of Fe-Ti oxide and silicate minerals in hematite-bearing ones are significantly different from those in hematite-free variety. Excluding albite, quartz, epidote, chlorite and phengite, the mineral assemblages of hematite-bearing ones are hematite+riebeckitic actinolite+sphene or hematite+crossite+sphene in the lower grade zone and hematite+ilmenite+rutile+hornblende±magnetite in the higher grade zone. In the other variety, the mineral assemblages are actinolite+sphene±rutile in the lower grade zone, and ilmenite+hornblende in the higher grade zone. Combining the mode of occurrence and chemistry of Fe-Ti oxides and sphene as well as the Mn-Fe2+ partitioning among magnetite, hematite and ilmenite, stability and paragenesis were determined. Magnetite, ilmenite and rutile in the hematite-bearing basic schists occur in the garnet and biotite zones, whereas, in the hematite-free ones, rutile is restricted to the garnet zone at the prograde stage, and ilmenite occurs in the biotite zone. Sphene is widespread in all the zones, but its occurrence is restricted to the lower grade zone at the prograde stage of metamorphism; its occurrence in the higher grade zone postdates major mineralization. The stable oxide mineral assemblages are magnetite+hematite, hematite+rutile, magnetite+hematite+ilmenite, magnetite+hematite+rutile, hematite+ilmenite+rutile and magnetite+hematite+ilmenite+rutile. Ilmenite and hematite contain significant amounts of MnO; the maximum MnO content of ilmenite and hematite are 24.1 and 2.1 wt. per cent, respectively. Therefore, the paragenesis of Fe-Ti oxide minerals can be determined only in the FeO-Fe203-Ti02-MnO system. The stability of Fe-Ti oxide minerals and sphene is controlled by the bulk-rock chemistry as well as pressure, temperature and oxygen fugacity.

  • Research Article
  • 10.22059/jsciences.2009.20131
Cation Exchange Between Piemontite and Garnet in Piemontite-Quartz Schists from Asemi-Gawa Area of Central Shikoku, Sanbagawa Metamorphic Belt, Japan
  • Dec 1, 2009
  • journal of sciences islamic republic of iran
  • Javad Izadyar

In the Asemi-gawa area of intermediate high-pressure and low-temperature Sanbagawa metamorphic belt in central Shikoku, Japan, piemontite-quartz schists are common in which cation exchange between piemontite and garnet has been studied. Piemontite in contact with garnet usually contains two zones in which core is enriched in Mn 3+ and surrounded by a rim rich in Fe 3+ . Garnet is Ca-Febearing spessartine and is slightly heterogeneous in which core rich in Mn is surrounded by a narrow rim poor in Mn and rich in Ca. The chemical composition of piemontite changes in contact with garnet in matrix or whenever it is included in the garnet porphyroblast. In both types of contacts, piemontite tends to be richer in Mn 3+ and poorer in Fe 3+ while garnet tends to be richer in Ca and Fe 3+ and poorer in Mn 2+ . P-T curves were calculated using piemontite-garnet equilibria and show that the chemical variation from core to rim in piemontite-ga rnet pair is related to increasing temperature whilst cation exchange in boundary of piemontite-garnet can be caused by decreasing temperature. Log f (O2)-T calculations show that cores of piemontite-ga rnet pair have been formed under more oxidizing condition than their rims. Calculations also show cation exchange between piemontite and garnet has been occurred under more oxidizing condition than the piemontite-garnet rim.

  • Research Article
  • Cite Count Icon 40
  • 10.1016/0024-4937(82)90018-4
Phase relations of pumpellyite-actinolite facies metabasites in the Sanbagawa metamorphic belt in central Shikoku, Japan
  • Oct 1, 1982
  • Lithos
  • Takashi Nakajima

Phase relations of pumpellyite-actinolite facies metabasites in the Sanbagawa metamorphic belt in central Shikoku, Japan

  • Research Article
  • Cite Count Icon 26
  • 10.1007/s004100100242
Application of differential thermodynamics (Gibbs' method) to amphibole zonings in the metabasic system
  • Jun 1, 2001
  • Contributions to Mineralogy and Petrology
  • Atsushi Okamoto + 1 more

Sodic, calcic and subcalcic amphiboles are expressed by the combination of tremolite, edenite, tschermakite, glaucophane, magesioriebeckite and Fe-tremolite. Because such complex compositions of amphiboles provide enough chemical variables to constrain equilibrium conditions of the metabasic system, amphibole composition makes it possible for Gibbs' method to be applied to this system. We made a framework for estimating quantitative P–T paths from compositions of a zoned amphibole in metabasite consisting of amphibole, chlorite, epidote, plagioclase, quartz and water in the system Na2O–CaO–MgO–FeO–Fe2O3–Al2O3–SiO2–H2O. For deriving total derivatives simply, mole fractions of cations in each site were introduced as the variables of amphibole composition. In obtaining non-ideality terms of amphibole activity, we used the regular solution models with 15 Margules parameters derived from published data. Application of the differential thermodynamics to a natural basic schist from the Sanbagawa metamorphic belt in central Shikoku provides both prograde and retrograde paths. The ranges of calculated P–T conditions are in good agreement with the previous study, and calculated compositions of coexisting minerals are consistent with the values from analyses of minerals in the sample. Activity models for amphiboles, especially non-ideality of tremolite–tschermakite (tr–ts) and tremolite–edenite (tr–ed) joins, provide significant effects on the calculated P–T paths. The initial P–T conditions given at the amphibole rim affect the calculated P–T paths slightly, but the shapes and lengths of the paths almost do not change. If compositional changes in each step of the amphibole zoning are small enough, Gibbs' method is able to transform the change of amphibole chemistry into changes of P–T conditions that are independent of the histories of the compositional changes of amphibole. This implies that all amphibole chemistry can be translated into the specific P–T condition, considering the relative compositional change from the reference amphibole, as long as the same mineral assemblage is preserved.

  • Research Article
  • Cite Count Icon 118
  • 10.4294/jpe1952.26.supplement_s345
THERMAL STRUCTURE OF THE SANBAGAWA METAMORPHIC BELT IN CENTRAL SHIKOKU
  • Jan 1, 1978
  • Journal of Physics of the Earth
  • Shohei Banno + 4 more

A detailed metamorphic zonal mapping is being in progress on the Sanbagawa metamorphic belt in central Shikoku. The mapping is based upon the distribution of index minerals, garnet and biotite in pelitic schists, and on the sliding equilibrium among silicate and oxide minerals. The distribution of mineral zones has revealed a peculiar thermal structure of the metamorphic complex that the highest-grade rocks occur in the middle of apparent stratigraphy. A large scale recumbent fold, with south vergency and extending for more than 20km, is postulated as a possible structural interpretation.It is concluded, as the most probable model we could imagine at the moment, that before the maximum temperature of metamorphism was reached, the Sanbagawa schists had been metamorphosed in more or less normal thermal regime that the temperature had increased downwards. Then a large scale recumbent fold took place, separating the higher-grade rocks from the heat source and bringing them in between the lower-grade ones. This recumbent fold was accompanied by the start of the uplift of the whole metamorphic complex, while continuing metamorphic reactions with decreasing temperature and pressure.The fact that the Sanbagawa belt is overturned suggests that a very distinctive crustal shortening took place in the present day Sanbagawa terrain in the Mesozoic time, and that the present day distribution of pre-Tertiary geologic units in the outer zone of the south-western Japan can hardly be in situ.

  • Research Article
  • Cite Count Icon 9
  • 10.2465/ganko1941.80.503
A comparison of graphitizing-degree and metamorphic zones of the Sanbagawa metamorphic belt in central Shikoku.
  • Jan 1, 1985
  • The Journal of the Japanese Association of Mineralogists, Petrologists and Economic Geologists
  • Michio Tagiri

A map of the graphitizing-degree has been drawn for the Sanbagawa metamorphic belt of central Shikoku, and compared with the metamorphic zones previously reported. The distribution of the graphitizing-degree (GD) is very consistent with the mineral zones of this district, showing minute thermal structures in the metamorphic zones, and suggests the extension of the oligoclase-biotite zone to the areas of the Tachikawa River and the Saruta River. The local disturbance of GD seems to be due to a tectonic event affecting rocks of the lower (or higher) metamorphic grade.

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  • Research Article
  • Cite Count Icon 23
  • 10.1111/jmg.12282
Progressive evolution of whole‐rock composition during metamorphism revealed by multivariate statistical analyses
  • Oct 23, 2017
  • Journal of Metamorphic Geology
  • Kenta Yoshida + 4 more

The geochemical evolution of metamorphic rocks during subduction‐related metamorphism is described on the basis of multivariate statistical analyses. The studied data set comprises a series of mapped metamorphic rocks collected from the Sanbagawa metamorphic belt in central Shikoku, Japan, where metamorphic conditions range from the pumpellyite–actinolite to epidote–amphibolite facies. Recent progress in computational and information science provides a number of algorithms capable of revealing structures in large data sets. This study applies k‐means cluster analysis (KCA) and non‐negative matrix factorization (NMF) to a series of metapelites, which is the main lithotype of the Sanbagawa metamorphic belt. KCA describes the structures of the high‐dimensional data, while NMF provides end‐member decomposition which can be useful for evaluating the spatial distribution of continuous compositional trends. The analysed data set, derived from previously published work, contains 296 samples for which 14 elements (Si, Ti, Al, Fe, Mn, Mg, Ca, Na, K, P, Rb, Sr, Zr and Ba) have been analysed. The KCA and NMF analyses indicate five clusters and four end‐members, respectively, successfully explaining compositional variations within the data set. KCA indicates that the chemical compositions of metapelite samples from the western (Besshi) part of the sampled area differ significantly from those in the east (Asemigawa). In the west, clusters show a good correlation with the metamorphic grade. With increasing metamorphic grade, there are decreases in SiO2 and Na2O and increases in other components. However, the compositional change with metamorphic grade is less obvious in the eastern area. End‐member decomposition using NMF revealed that the evolutional change of whole‐rock composition, as correlated with metamorphic grade, approximates a stoichiometric increase of a garnet‐like component in the whole‐rock composition, possibly due to the precipitation of garnet and effusion of other components during progressive dehydration. Thermodynamic modelling of the evolution of the whole‐rock composition yielded the following results: (1) the whole‐rock composition at lower metamorphic grade favours the preferential crystallization of garnet under the conditions of the garnet zone, with biotite becoming stable together with garnet in higher‐grade rock compositions under the same P–T conditions; (2) with higher‐grade whole‐rock compositions, more H2O is retained. These results provide insight into the mechanism suppressing dehydration under high‐P metamorphic conditions. This mechanism should be considered in forward modelling of the fluid cycle in subduction zones, although such a quantitative model has yet to be developed.

  • Research Article
  • Cite Count Icon 36
  • 10.1016/s0191-8141(98)00044-3
C-Axis fabrics and microstructures in quartz schist from the Sambagawa metamorphic belt, central Shikoku, Japan
  • Nov 1, 1998
  • Journal of Structural Geology
  • Masahiko Tagami + 1 more

c-Axis fabrics and microstructures in quartz schist from the Sambagawa metamorphic belt, central Shikoku, Japan

  • Research Article
  • Cite Count Icon 2
  • 10.5575/geosoc.102.xi
Deformation microstructures of the quartz in quartz schist from the Sambagawa metamorphic belt in central Shikoku
  • Jan 1, 1996
  • The Journal of the Geological Society of Japan
  • Masahiko Tagami + 1 more

In the Asemi River region of the Sambagawa metamorphic belt, central Shikoku (Fig.1), dozens of quartz schist layers are intercalated, in which well-defined quartz c-axis fabrics penetratively developed. In this pictorial, we show the close relationship between microstructures and c-axis fabrics in the deformed quartz, which indicates that both the microstructures reflect the deformation geometries caused by ductile flow in the Sambagawa metamorphic belt.The geological structure in the region is characterized by E-Wtrending and Ndipping foliation (Sb), and horizontal mineral lineation (Lm). ThesamplesforFigs.2, 3, 4 and 5 are collected respectively from the metamorphic zones as shown in Fig.1. In all the figures, X, Y and Z directions denote the directions parallel to Iineation, parallel to foliation and normal to lineation, and normal to foliation, respectively, and thesedirections can be approximated as the principal directions of strain ellipsoid(X>Y>Z).

  • Book Chapter
  • Cite Count Icon 7
  • 10.1007/978-94-009-9535-2_23
Thermal Structure of the Sanbagawa Metamorphic Belt in Central Shikoku
  • Jan 1, 1979
  • Shohei Banno + 4 more

Thermal Structure of the Sanbagawa Metamorphic Belt in Central Shikoku

  • Research Article
  • 10.14863/geosocabst.1997.0_212_1
221 A widespread occurrence of talc-phengite in piemontite quartz schist of the Sanbagawa metamorphic belt in central Shikoku
  • Sep 30, 1997
  • Annual Meeting of the Geological Society of Japan
  • Javad Izadyar

221 A widespread occurrence of talc-phengite in piemontite quartz schist of the Sanbagawa metamorphic belt in central Shikoku

  • Research Article
  • Cite Count Icon 36
  • 10.1130/g24599a.1
Areal extent of eclogite facies metamorphism in the Sanbagawa belt, Japan: New evidence from a Raman microprobe study of quartz residual pressure
  • Jan 1, 2008
  • Geology
  • T Mouri + 1 more

Research Article| June 01, 2008 Areal extent of eclogite facies metamorphism in the Sanbagawa belt, Japan: New evidence from a Raman microprobe study of quartz residual pressure T. Mouri; T. Mouri 1Department of Earth and Planetary Sciences, Nagoya University, Chikusaku, Nagoya 464-8601, Japan Search for other works by this author on: GSW Google Scholar M. Enami M. Enami 1Department of Earth and Planetary Sciences, Nagoya University, Chikusaku, Nagoya 464-8601, Japan Search for other works by this author on: GSW Google Scholar Author and Article Information T. Mouri 1Department of Earth and Planetary Sciences, Nagoya University, Chikusaku, Nagoya 464-8601, Japan M. Enami 1Department of Earth and Planetary Sciences, Nagoya University, Chikusaku, Nagoya 464-8601, Japan Publisher: Geological Society of America Received: 26 Nov 2007 Revision Received: 19 Feb 2008 Accepted: 01 Mar 2008 First Online: 02 Mar 2017 Online ISSN: 1943-2682 Print ISSN: 0091-7613 © 2008 Geological Society of America Geology (2008) 36 (6): 503–506. https://doi.org/10.1130/G24599A.1 Article history Received: 26 Nov 2007 Revision Received: 19 Feb 2008 Accepted: 01 Mar 2008 First Online: 02 Mar 2017 Cite View This Citation Add to Citation Manager Share Icon Share Facebook Twitter LinkedIn Email Permissions Search Site Citation T. Mouri, M. Enami; Areal extent of eclogite facies metamorphism in the Sanbagawa belt, Japan: New evidence from a Raman microprobe study of quartz residual pressure. Geology 2008;; 36 (6): 503–506. doi: https://doi.org/10.1130/G24599A.1 Download citation file: Ris (Zotero) Refmanager EasyBib Bookends Mendeley Papers EndNote RefWorks BibTex toolbar search Search Dropdown Menu toolbar search search input Search input auto suggest filter your search All ContentBy SocietyGeology Search Advanced Search Abstract Application of Raman spectrometry to determine residual pressure retained by quartz grains sealed in garnet reveals significant differences between eclogite facies rocks and lower-grade schistose rocks of the Sanbagawa metamorphic belt in central Shikoku, Japan. Garnet in the eclogitic lithologies commonly exhibits two chemically distinct growth stages. The inner segment commonly includes quartz grains with higher residual pressures than those in the outer segment, suggesting that the former represents prograde eclogite facies and the latter formed during exhumation. Regional variation of the quartz residual pressure suggests that the eclogite unit has a far greater extent than previously recognized, and reveals a large pressure gap between the newly proposed eclogite and noneclogite units. You do not have access to this content, please speak to your institutional administrator if you feel you should have access.

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