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Fluid processes during the exhumation of high-P metamorphic belts

Published online by Cambridge University Press:  05 July 2018

J. A. Miller*
Affiliation:
Department of Earth Sciences and Victorian Institute of Earth and Planetary Sciences (VIEPS), Monash University, Clayton, Victoria 3168, Australia
I. S. Buick
Affiliation:
Department of Earth Sciences and VIEPS, La Trobe University, Bundoora, Victoria 3083, Australia
I. Cartwright
Affiliation:
Department of Earth Sciences and Victorian Institute of Earth and Planetary Sciences (VIEPS), Monash University, Clayton, Victoria 3168, Australia
A. Barnicoat
Affiliation:
School of Earth Sciences, University of Leeds, Leeds LS2 9JT, UK

Abstract

Fluids can play a direct role in exhumation by influencing exhumation mechanisms and the driving processes for these mechanisms. In addition, the process of exhumation leads to the development of fluid-related features that in themselves may not drive exhumation. Fluids involved in exhumation are generally derived from dehydration reactions occurring during decompression, but at shallower crustal levels may also involve the introduction of exotic fluids. The composition of fluids attending exhumation are generally saline – CO2 mixtures, but N2, CH4, H2O mixtures have also been recorded. Studies of fluid features related to exhumation have found that fluids may contribute to density changes and the initiation of partial melting during decompression, as well as the development of extensive vein systems. However, the preservation of geochemical signatures related to fluid processes occurring prior to high-P and ultrahigh-P metamorphism indicates that large-scale pervasive fluid flow systems, in general, do not operate at any stage during the exhumation history. Large-scale channelled fluid flow may have operated in detachment faults and shear zones related to exhumation, and this requires further study. The most significant role of fluids during exhumation appears to be their controlling influence on the preservation of high-P or ultrahigh-P rocks.

Type
Research Article
Copyright
Copyright © The Mineralogical Society of Great Britain and Ireland 2002

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Footnotes

Present Address: Department of Geological Sciences, University of Cape Town, Rondebosch, 7700 Republic of South Africa

References

Agard, P., Goffé, B., Touret, J.L.R. and Vidal, O. (2000) Retrograde mineral and fluid evolution in high-pressure metapelites (Schistes lustrés unit, Western Alps). Contributions to Mineralogy and Petrology, 140, 296315.CrossRefGoogle Scholar
Alt, J.C. (1995) Subseafloor processes in Mid-Ocean Ridge Hydrothermal Systems. American Geophysical Union, Monograp. 91, 85114 Google Scholar
Anderson, T., Burke, E.A.J. and Austrheim, H. (1989) Nitrogen-bearing aqueous fluid inclusions in some eclogites from the Western Gneiss Region of the Norwegian Caledonides. Contributions to Mineralogy and Petrology, 103, 153165.CrossRefGoogle Scholar
Andersen, T., Austrheim, H. and Burke, E.A.J. (1991 a) Mineral-fluid-melt interactions in high-pressure shear zones in the Bergen arcs nappe complex, Caledonides of W. Norway: Implications for the fluid regime in Caledonide eclogite-facies meta-morphism. Lithos, 27, 187204.CrossRefGoogle Scholar
Andersen, T.B., Jamtveit, B., Dewey, J.F. and Swensson, E. (1991 b). Subduction and eduction of continental crust: Major mechanisms during continent-continent collision and orogenic extensional collapse, a model based on the south Norwegian Caledonides. Terra Nova, 3, 303310.CrossRefGoogle Scholar
Andersen, T.B., Austrheim, A., Burke, E.A.J. and Evevold, S. (1993) N2 and CO2 in deep crustal fluids: Evidence from the Caledonides of Norway. Chemical Geology, 108, 113132.CrossRefGoogle Scholar
Austrheim, H. (1987) Eclogitisation of lower crustal granulites by fluid migration through shear zones. Earth and Planetary Science Letters, 81, 221232.CrossRefGoogle Scholar
Austrheim, H. and Engvik, A.K. (1997) Fluid transport, deformation and metamorphism at depth in a collision zone. Pp. 123137 in: Fluid Flow and Transport in Rock. (Jamtveit, B. and Yardley, B.W.D., editors). Chapman & Hall, London.CrossRefGoogle Scholar
Austrheim, H., Erambert, M. and Engvik, A.K. (1997) Processing of crust in the root of the Caledonian continental collision zone: the role of eclogitisation. Tectonophysics, 273, 129153.CrossRefGoogle Scholar
Avigad, D. (1992) Exhumation of coesite-bearing rocks in the Dora Maira massif (Western Alps, Italy). Geology, 20, 947950.2.3.CO;2>CrossRefGoogle Scholar
Barnicoat, A.C. (1988) The mechanism of veining and retrograde alteration of Alpine eclogites. Journal of Metamorphic Geology, 6, 545558.CrossRefGoogle Scholar
Barnicoat, A.C. and Bowtell, S.A. (1995) Seafloor hydrothermal alteration in metabasites from high-pressure ophiolites of the Zermatt-Aosta area of the western Alps. Museo Regionale di Scienze Naturali di Torino, Bolletino, 13 (Suppl.), 191220.Google Scholar
Barnicoat, A.C. and Cartwright, I. (1995) Focussed fluid flow during subduction: Oxygen isotope data from high-pressure ophiolites of the western Alps. Earth and Planetary Science Letters, 132, 5361.CrossRefGoogle Scholar
Barnicoat, A.C. and Cartwright, I. (1997) The gabbro-eclogite transformation: an oxygen isotope and petrographic study of west Alpine ophiolites. Journal of Metamorphic Geology, 15, 93104.CrossRefGoogle Scholar
Barnicoat, A.C. and Fry, N. (1986) High-pressure metamorphism of the Zermatt-Saas ophiolite zone, Switzerland. Journal of the Geological Society of London, 143, 607618.CrossRefGoogle Scholar
Barr, H. (1990) Preliminary fluid inclusion studies in a high-grade blueschist terrane, Syros, Greece. Mineralogical Magazine, 54, 159168.CrossRefGoogle Scholar
Barrientos, X. (1991) Petrology of coexisting blueschist and greenschists, He de Groix, France: implications for preservation of blueschists. PhD thesis, Harvard Univ., USA.Google Scholar
Barrientos, X. and Selverstone, J. (1993) Infiltration vs thermal overprinting of epidote blueschists, Ile de Groix, France. Geology, 21, 6972.2.3.CO;2>CrossRefGoogle Scholar
Bebout, G.E. (1996) Volatile transfer and recycling at convergent margins: mass-balance and insights from high- P/T metamorphic rocks. American Geophysical Union Monogaph, 96, 179194.Google Scholar
Bebout, G.E. and Barton, M.D. (1993) Metasomatism during subduction: products and possible paths in the Catalina Schist, California. Chemical Geology, 108, 6192.CrossRefGoogle Scholar
Becker, H., Jochum, K.P. and Carlson, R.W. (1999) Constraints from high-pressure veins in eclogites on the composition of hydrous fluids in subduction zones. Chemical Geology, 160, 291308.CrossRefGoogle Scholar
Bousquet, R, Goffé, B., Henry, P., Le Pichon, X. and Chopin, C. (1997) Kinematic, thermal and petrolo-gical model of the Central Alps: Lepontine metamorphism in the upper crust and eclogitisation of the lower crust. Tectonophysics, 273, 105127.CrossRefGoogle Scholar
Bröker, M. (1990) Blueschist-to-greenschist transition in metabasites from Tinos Island, Cyclades, Greece: Compositional control or fluid infiltration? Lithos, 25, 2539.CrossRefGoogle Scholar
Buick, I.S. and Cartwright, I. (1998) Metamorphic fluid flow at schist-marble boundaries, Corsica, France. Proceedings of the 9th International Symposium on Water-Rock Interaction. Pp. 789792. Balkema, Rotterdam, The Netherlands.Google Scholar
Burg, J.-P. and Philippot, P. (1991) Asymmetric compositional layering of syntectonic metamorphic veins are way-up criteria. Geology, 19, 11121115.2.3.CO;2>CrossRefGoogle Scholar
Burkhard, M., Kerrich, R, Maas, R. and Fyfe, W.S. (1992) Stable and Sr-isotope evidence for fluid advection during thrusting of the Glarus Nappe (Swiss Alps). Contributions to Mineralogy and Petrology, 112, 293311.CrossRefGoogle Scholar
Carter, N.L., Kronenberg, A.K., Ross, J.V. and Wiltschko, D.V. (1990) Controls of fluids on deformation of rocks. Pp. 113 in: Deformation Mechanisms, Rheology and Tectonic. (Knipe, R.J. and Rutter, E.H., editors). Special Publication, 54. Geological Society, London.Google Scholar
Cartwright, I. and Barnicoat, A.C. (1999) Stable isotope geochemistry of alpine ophiolites: A window to ocean floor hydrothermal alteration and constraints on fluid-rock interaction during high-pressure metamorphism. International Journal of Earth Science, 88, 219235.CrossRefGoogle Scholar
Cartwright, I. and Buick, I.S. (1999) The flow of surface-derived fluids through Alice Springs age middle-crustal ductile shear zones, Reynolds Range, central Australia. Journal of Metamorphic Geology, 17, 397414.CrossRefGoogle Scholar
Cartwright, I. and Buick, I.S. (2000) Fluid generation, vein formation, and the degree of fluid-rock interaction during decompression of high-pressure terranes: The Schists Lustrés, Alpine Corsica, France. Journal of Metamorphic Geology, 18, 607624.CrossRefGoogle Scholar
Chamberlain, C.P., Zeitler, P.K., Barnett, D.E., Winslow, D., Poulson, S.R., Leahy, T. and Hammer, J.E. (1995) Active hydrothermal systems during the recent uplift of Nanga Parbat, Pakistan Himalaya. Journal of Geophysical Research, 100, 439495.CrossRefGoogle Scholar
Chopin, C, Henry, C. and Michard, A. (1991) Geology and petrology of the coesite bearing terrane, Dora Maira massif, Western Alps. European Journal of Mineralogy, 3, 263291.CrossRefGoogle Scholar
Cocker, J.D., Griffin, B.J. and Muehlenbachs, K. (1982) Oxygen and carbon isotope evidence for seawater hydrothermal alteration of the Macquarie Island ophiolite. Earth and Planetary Science Letters, 61, 112122.CrossRefGoogle Scholar
Coward, M.P. and Dietrich, D. (1989) Alpine tectonics – an overview. Pp. 129 in: Alpine Tectonic. (Coward, M.P. and Dietrich, D., editors). Special Publication, 45.Geological Society London.Google Scholar
Crespo-Blanc, A.C., Masson, H., Sharp, Z., Cosca, M. and Hunziker, M. (1995) A stable and 40Ar/39Ar isotope study of a major thrust in the Helvetic nappes (Swiss Alps): evidence for fluid flow and constraints on nappe kinematics. Geological Society of America Bulletin, 107, 11291144.2.3.CO;2>CrossRefGoogle Scholar
Cuthbert, S.J., Harvey, M.A. and Carswell, D.A. (1983) A tectonic model for the metamorphic evolution of the Scandinavian Caledonides. Pp. 180203 in: Eclogite Fades Rock. (Carswell, D.A., editor). Blackie, Glasgow, UK.Google Scholar
Dewey, J. F. (1988) Extensional collapse of orogens. Tectonics, 7, 11231139.CrossRefGoogle Scholar
Dewey, J.F., Ryan, P. D. and Andersen, T.B. (1993) Orogenic uplift and collapse, crustal thickness, fabrics, and metamorphic phase changes: the role of eclogites. Pp. 325343 in: Magmatic Processes and Plate Tectonic. (Pritchard, H.M., Alabaster, T., Harris, N.B.W. and Neary, C.R., editors). Special Publication, 76. Geological Society, London.Google Scholar
Dipple, G.M. and Ferry, J.M. (1992 a) Metasomatism and fluid flow in ductile fault zones. Contributions to Mineralogy and Petrology, 112, 149164.CrossRefGoogle Scholar
Dipple, G.M. and Ferry, J.M. (19926) Fluid flow and stable isotopic alteration in rocks at elevated temperatures with applications to metamorphism. Geochimica et Cosmochimica Acta, 56, 35393550.CrossRefGoogle Scholar
Dipple, G.M., Wintsch, R.P. and Andrews, M.S. (1990) Identification of the scales of differential element mobility in a ductile fault zone. Journal of Metamorphic Geology, 8, 645661.CrossRefGoogle Scholar
England, P.C. and Molnar, P. (1990) Surface uplift, uplift of rocks, and exhumation of rocks. Geology, 18, 11731177.2.3.CO;2>CrossRefGoogle Scholar
Engvik, A.K., Austrheim, H. and Andersen, T.B. (2000) Structural, mineralogical and petrophysical effects on deep crustal rocks of fluid-limited polymetamorphism, Western Gneiss Region, Norway. Journal of Geological Society of London, 157, 151–134.CrossRefGoogle Scholar
Erambert, M. and Austrheim, H. (1993) The effects of fluid and deformation on zoning and inclusion patterns in polymetamorphic garnets. Contributions to Mineralogy and Petrology, 115, 204214.CrossRefGoogle Scholar
Fournier, M., Jolivet, L., Goffé, B. and Dubois, R. (1991) Alpine Corsica metamorphic core complex. Tectonics, 10, 11731186.CrossRefGoogle Scholar
Franz, G. and Smelik, E.A. (1995) Zoisite-clinozoisite bearing pegmatites and their importance for decom-pressional melting in eclogites. European Journal of Mineralogy, 7, 14211436.CrossRefGoogle Scholar
Franz, G., Thomas, S. and Selverstone, J. (1989) Fluids in eclogites: Evidence from high-pressure veins in the Austrian Alps. EOS 70, 43, 1377.Google Scholar
Fricke, H.C., Wickham, S.M. and O’Neil, J.R. (1992) Oxygen and hydrogen isotope evidence for meteoric water infiltration during mylonitisation and uplift in the Rubu mountains-East Humboldt Range core complex, Nevada. Contributions to Mineralogy and Petrology, 111, 203221.CrossRefGoogle Scholar
Fyfe, W.S. and Kerrich, R. (1985) Fluids and thrusting. Chemical Geology, 49, 353362.CrossRefGoogle Scholar
Ganor, J., Matthews, A. and Paldor, N. (1989) Constraints on effective diffusivity during oxygen isotope exchange at a marble-schist contact, Sifnos (Cyclades), Greece. Earth and Planetary Science Letters, 94, 208216.CrossRefGoogle Scholar
Ganor, J., Matthews, A. and Schliestedt, M. (1994) Post-metamorphic low δ13C calcite in the Cycladic complex (Greece) and their implications for modelling fluid infiltration processes using carbon isotope compositions. European Journal of Mineralogy, 6, 365379.CrossRefGoogle Scholar
Ganor, J., Matthews, A, Schliestedt, M. and Garfunkel, Z. (1996) Oxygen isotopic heterogeneities of metamorphic rocks: an original tectonostratigraphic signature, or an imprint of exotic fluids? A case study of Sifnos and Tinos islands (Greece). European Journal of Mineralogy, 8, 719732.CrossRefGoogle Scholar
Getty, S.R. and Selverstone, J. (1994) Stable isotopic and trace element evidence for restricted fluid migration in 2Gpa eclogites. Journal of Metamorphic Geology, 12, 747760.CrossRefGoogle Scholar
Gillis, K.M. and Robinson, P.T. (1990) Distribution of alteration zones in the upper oceanic crust. Geology, 16, 262266.2.3.CO;2>CrossRefGoogle Scholar
Gregory, R.T. and Taylor, H.P. (1981) An oxygen isotope profile in a section of Cretaceous oceanic crust, Samail ophiolite, Oman: Evidence for δ18O buffering of oceans by deep (>5 km) seawater-hydrothermal circulation at mid-ocean ridges. Journal of Geophysical Research, 86, 27372755.CrossRefGoogle Scholar
Hacker, B.R. (1996) Eclogite formation and the rheology, buoyancy, seismicity and H2O content of oceanic crust. Pp. 337346 in: Subduction Top to Botto. (Bebout, G.R., Scholl, D.W., Kirby, S.H. and Platt, J.P., editors). American Geophysical Union, Monograph 96.Google Scholar
Harley, S.L. and Carswell, D.A. (1995) Ultradeep crustal metamorphism: A prospective view. Journal of Geophysical Research, 100, 83678380.CrossRefGoogle Scholar
Heinrich, C.A. (1982) Kyanite-eclogite to amphibolite fades evolution of hydrous mafic and pelitic rocks, Adula Nappe, Central Alps. Contributions to Mineralogy and Petrology, 81, 3038.CrossRefGoogle Scholar
Henry, C., Burkhard, M. and Goffé, B. (1996) Evolution of synmetamorphic veins and their wallrocks through a Western Alps transect: no evidence for large-scale fluid flow. Stable isotope, major and trace-element systematics. Chemical Geology, 127, 81109.CrossRefGoogle Scholar
Hoefs, J. (1997) Stable Isotope Geochemistry. Springer, Berlin.CrossRefGoogle Scholar
Holland, T.J.B. (1979) High-water activities in the generation of high-pressure kyanite eclogites of the Tauern Window, Austria. Journal of Geology, 87, 127.CrossRefGoogle Scholar
Holland, T.J.B. (1988) Preliminary phase relation involving glaucophane and applications to high pressure petrology: new heat capacity and thermodynamic data. Contributions to Mineralogy and Petrology, 99, 134142.CrossRefGoogle Scholar
Holland, T.J.B. and Powell, R. (1998) An internally consistent thermodynamic data set for phases of petrological interest. Journal of Metamorphic Geology, 16, 309343.CrossRefGoogle Scholar
Hollister, L.S. (1993) The role of melt in the uplift and exhumation of orogenic belts. Chemical Geology, 108, 3148.CrossRefGoogle Scholar
Holness, M.B. (1997) The permeability of non-deforming rock. Pp. 939 in: Deformation-enhanced Fluid Transport in the Earth’s Crust and Mantle. (Holness, M.B., editor). The Mineralogical Society Series, 8, Chapman & Hall, London.Google Scholar
Jamtveit, B., Bucher-Nurminen, K. and Austrheim, H. (1990) Fluid controlled eclogitisation of granulites in deep crustal shear zones, Bergen arcs, Western Norway. Contributions to Mineralogy and Petrology, 104, 184193.CrossRefGoogle Scholar
Johannes, W. and Holtz, F. (1996) Petrogenesis and Experimental Petrology of Granitic Rocks. Springer-Verlag, Berlin.CrossRefGoogle Scholar
Katzir, Y., Matthews, A., Garfunkel, Z., Schliestedt, M. and Avigad, D. (1996) The tectono-metamorphic evolution of a dismembered ophiolite. Geological Magazine, 133, 237254.CrossRefGoogle Scholar
Kerrich, R. and Hyndman, D. (1986) Thermal and fluid regimes in the Bitteroot lobe Sapphire block detachment zone, Montana; Evidence from 18O/16O and geological relationships. Geological Society of America Bulletin, 97, 147155.2.0.CO;2>CrossRefGoogle Scholar
Kerrich, R, La Tour, T.E. and Willmore, L. (1984) Fluid participation in deep fault zones: evidence from geological, geochemical and 18O/16O relations. Journal of Geophysical Research, 89, 43314343.CrossRefGoogle Scholar
Klemd, R. (1989) PT evolution and fluid inclusion characteristics of retrograded eclogites, Münchberg gneiss complex, Germany. Contributions to Mineralogy and Petrology, 102, 221229.CrossRefGoogle Scholar
Klemd, R, van der Kerkhof, M. and Horn, E.E. (1992) High-density CO2-N2 inclusions in eclogite-facies metasediments of the Müncheberg gneiss complex, SE Germany. Contributions to Mineralogy and Petrology, 111, 409419.CrossRefGoogle Scholar
Klemd, R., Brocker, M. and Schramm, J. (1995) Characterisation of amphibolite-facies fluids of Variscan eclogites from the Orlica-Snieznik dome (Sudetes, SW Poland). Chemical Geology, 119, 101113.CrossRefGoogle Scholar
Krabbendam, M. and Dewey, D.F. (1998) Exhumation of UHP rocks by transtension in the Western Gneiss Region, Scandinavian Caledonides. Pp. 159181 in: Continental Transtensional and Transpressional Tectonics. (Holdsworth, R.E., Strachan, R.A. and Dewey, J.F., editors). Special Publication, 135. Geological Society, London.Google Scholar
Krabbendam, M. and Dewey, J.F. (2000) The density evolution of two Scandinavian eclogite terranes: Implications for burial mechanisms of ultrahigh pressure rocks. Tectonics, (submitted).Google Scholar
Krabbendam, M. and Wain, A. (1997) Late-orogenic structures, differential retrogression and structural position of HP and UHP rocks in the Nordfjord-Stadtlandet area, Western Gneiss Region. Norges Geologiske Undersł kelse Bulletin, 432, 127139.Google Scholar
Krogh, E.J. and Carswell, D.A. (1995) HP and UHP eclogites and garnet peridotites in the Scandinavian Caledonides. Pp. 244298 in: Ultrahigh Pressure Metamorphism. (Coleman, R.G. and Wang, X., editors). Cambridge University Press, Cambridge, UK.CrossRefGoogle Scholar
Lobato, L.M., Forman, J.M.A., Fazikawa, K, Fyfe, W.S. and Kerrich, R. (1983) Uranium in overthrust Archaean basement, Bahia, Brazil. Canadian Mineralogist, 21, 647654.Google Scholar
Luckscheiter, B. and Morteani, G. (1980). The fluid phase in eclogites, glaucophane-bearing rocks and amphibolites from the Central Tauern Window as deduced from fluid inclusion studies. Tschermaks Mineralogie und Petrographie Mitteilungen, 27, 99111.CrossRefGoogle Scholar
Matthews, A. and Schliestedt, M. (1984) Evolution of the blueschist and greenschist facies rocks of Sifnos, Cyclades, Greece: a stable isotope study of subduction related metamorphism. Contributions to Mineralogy and Petrology, 88, 150163.CrossRefGoogle Scholar
Matthews, A, Liati, A, Mposkos, E. and Skarpelis, N. (1996) Oxygen isotope geochemistry of the Rhodope polymetamorphic terrane in northern Greece: evidence for preservation of pre-metamorphic isotopic compositions. European Journal of Mineralogy, 8, 11391152.CrossRefGoogle Scholar
Matthews, A, Lieberman, J., Avigad, D. and Garfunkel, Z. (1999) Fluid-rock interaction and thermal evolution during thrusting of an Alpine metamorphic complex (Tinos island, Greece). Contributions to Mineralogy and Petrology, 135, 212224.CrossRefGoogle Scholar
McCaig, A.M. (1997) The geochemistry of volatile fluid flow in shear zones. Pp. 227266 in: Deformation-enhanced Fluid Transport in the Earth’s Crust and Mantle. (Holness, M.B., editor). The Mineralogical Society Series, 8. Chapman & Hall London.Google Scholar
McCaig, A.M., Wickham, S.M. and Taylor, H.P. Jr. (1990) Deep fluid circulation in alpine shear zones, Pyrenees, France: field and oxygen isotope studies. Contributions to Mineralogy and Petrology, 106, 4160.CrossRefGoogle Scholar
Miller, J.A. and Cartwright, I. (2000) Evidence for large-scale fluid flow within the Corsican ophiolite. Journal of Geochemical Exploration, 69-70, 297301.CrossRefGoogle Scholar
Miller, J.A, Cartwright, I. and Barnicoat, A.C. (1998) The formation of albite veins in high-pressure terranes: examples from Corsica, France and Zermatt-Saas, Switzerland. Proceedings of the 9th International Symposium on Water-Rock Interaction, pp. 789792. Balkema, Rotterdam, The Netherlands.Google Scholar
Miller, J.A., Buick, I.S. and Cartwright, I. (2000) Textural implications of high-pressure fluid flow controlled by pre-subduction deformation and alteration patterns. Journal of Geochemical Exploration, 69-70, 551555.CrossRefGoogle Scholar
Miller, J.A., Cartwright, I., Buick, I.S. and Barnicoat, A.C. (2001) An O-isotope profile through the HP-LT Corsican ophiolite, France and its implications for fluid flow during subduction. Chemical Geology, 178, 4369.CrossRefGoogle Scholar
Miller, J.A, Cartwright, I. and Barnicoat, A.C. (in press) Formation of albite veins during exhumation – A case study from the Corsican and Zermatt-Saas Ophiolites, Western European Alps. Journal of Metamorphic Geology. Google Scholar
Moore, D.E. (1984) Metamorphic history of a high-grade blueschist-exotic block from the Franciscan Complex, California. Journal of Petrology, 25, 126150.CrossRefGoogle Scholar
Morrison, J. (1994) Downward circulation of meteoric water into the lower plate of the Whipple Mountains metamorphic core complex, California. Journal of Metamorphic Geology, 12, 827840.CrossRefGoogle Scholar
Mottana, A, Carswell, D.A, Chopin, C. and Oberhänsli, R. (1990) Eclogite facies mineral parageneses. Pp. 1452 in: Eclogite Facies Rock. (Carswell, D.A., editor). Blackie (Glasgow and London).CrossRefGoogle Scholar
Muehlenbachs, K. (1986) Alteration of the ocean crust and the 18O history of seawater. Pp. 425445 in: Stable Isotopes in High-Temperature Geological Processe. (Valley, J.W., Taylor, H.P. Jr., and O’Neil, J.R., editors). Reviews in Mineralogy, 16. Mineralogical Society of America, Washington, D.C. CrossRefGoogle Scholar
Nadeau, S., Philippot, P. and Pineau, F. (1993) Fluid inclusion and mineral compositions (H-C-O) in eclogitic rocks as tracers of local fluid migration during high-pressure metamorphism. Earth and Planetary Science Letters, 114, 431448.CrossRefGoogle Scholar
Nicollet, C., Leyreloup, A., Dupuy, C. (1979) Petrogenesis of high-pressure trondhjemitic layers in eclogites and amphibolites from the southern Massif Central, France. Pp. 435463 in: Trondhjemites, Dacites and Related Rocks. (Barker, F., editor). Elsevier, The Netherlands.CrossRefGoogle Scholar
Pawley, A.R. and Wood, B.J. (1995) The high-pressure stability of talc and 10 Å phase: potential storage sites for H2O in subduction zones. American Mineralogist, 80, 9981003.CrossRefGoogle Scholar
Peacock, S.M. (1990) Fluid processes in subduction zones. Science, 248, 329337.CrossRefGoogle ScholarPubMed
Peacock, S.M. (1993 a) The importance of blueschist-eclogite dehydration reactions in subducting oceanic crust. Geological Society of America Bulletin, 105, 684694.2.3.CO;2>CrossRefGoogle Scholar
Peacock, S.M. (1993 b) Large-scale hydration of the lithosphere above subducting slabs. Chemical Geology, 108, 4959.CrossRefGoogle Scholar
Philippot, P. (1993) Fluid-melt-rock interaction in mafic eclogites and coesite-bearing metasediments: con-straints on volatile recycling during subduction. Chemical Geology, 108, 93112.CrossRefGoogle Scholar
Philippot, P. and Scambelluri, M. (1996) Composition and behaviour of fluids in high-pressure rocks from the Alps. Museo Regionale di Scienze Naturali di Torino, Bollettino, 13, 7599.Google Scholar
Philippot, P. and Selverstone, J. (1991) Trace element rich brines in eclogite veins: implications for fluid composition and transport during subduction. Contributions to Mineralogy and Petrology, 106, 417430.CrossRefGoogle Scholar
Philippot, P. and van Roermund, H.L.M. (1992) Deformation processes in eclogitic rocks: evidence for the rheological delamination of the oceanic crust in deeper levels of subduction zones. Journal of Structural Geology, 14, 10591077.CrossRefGoogle Scholar
Philippot, P., Chevallier, P., Chopin, C. and Dubessy, J. (1995) Fluid composition and evolution in coesite-bearing rocks (Dora-Maira massif, Western Alps): implications for element recycling during subduction. Contributions to Mineralogy and Petrology, 121, 2944.CrossRefGoogle Scholar
Platt, J.P. (1986) Dynamics of orogenic wedges and the uplift of high-pressure metamorphic rocks. Bulletin of the Geological Society of America, 86, 10371053.2.0.CO;2>CrossRefGoogle Scholar
Platt, J.P. (1993) Exhumation of high-pressure rocks: a review of concepts and processes. Terra Nova, 5, 119133.CrossRefGoogle Scholar
Platt, J.P. and England, P.C. (1994) Convective removal of lithosphere beneath mountain belts: thermal and mechanical consequences. American Journal of Science, 294, 307336.CrossRefGoogle Scholar
Pognante, U, Talarico, F. and Benna, P. (1988) Incomplete blueschist recrystallization in high-grade metamorphics from the Sesia-Lanzo Unit (Vasario-Sparone subunit, Western Alps): A case history of metastability. Lithos, 21, 129142.CrossRefGoogle Scholar
Poli, S. and Schmidt, M.W. (1995) H2O transport and release in subduction zones: Experimental con-straints on basaltic and andesitic systems. Journal of Geophysical Research, 100, 2229922314.CrossRefGoogle Scholar
Poli, S. and Schmidt, M.W. (1997) The high–pressure stability of hydrous phases in orogenic belts: an experimental approach to eclogite-forming processes. Tectonophysics, 273, 169184.CrossRefGoogle Scholar
Reddy, S.M., Wheeler, J. and Cliff, R.A. (1999) The geometry and timing of orogenic extension: an example from the Western Alps. Journal of Metamorphic Geology, 17, 573591.CrossRefGoogle Scholar
Reinecke, T. (1998) Prograde high- to ultrahigh-pressure metamorphism and exhumation of oceanic sediments at Lago di Cignana, Zermatt-Saas Zone, western Alps. Lithos, 42, 147189.CrossRefGoogle Scholar
Reynolds, S.J. and Lister, G.L. (1987) Structural aspects of fluid-rock interactions in detachment zones. Geology, 15, 362366.2.0.CO;2>CrossRefGoogle Scholar
Ring, U, Brandon, M.T., Willet, S.D. and Lister, G.S. (1999) Exhumation processes. Pp. 127 in: Exhumation Processes: Normal Faulting, Ductile Flow and Erosion. (Ring, U., Brandon, M.T., Lister, G.S. and Willet, S.D., editors). Special Publication, 154. Geological Society, London.Google Scholar
Rubie, D.C. (1990) Role of kinetics in the formation and preservation of eclogites. Pp. 111140 in: Eclogite Fades Rocks. (Carswell, D.A, editor). Blackie, Glasgow and London.CrossRefGoogle Scholar
Rumble, D. (1998) Stable isotope geochemistry of ultrahigh-pressure rocks. Pp. 241259 in: When Continents Collide: Geodynamics and Geochemistry of Ultrahigh-pressure Rocks. (Hacker, B.R. and Liou, J.G., editors). Kluwer Academic Publishers, The Netherlands.CrossRefGoogle Scholar
Rutter, E.H. and Brodie, K.H. (1995) Mechanistic interactions between deformation and metamorphism. Geological Magazine, 30, 227239.CrossRefGoogle Scholar
Scambelluri, M. (1992) Retrograde fluid inclusions in eclogitic metagabbros from the Ligurian Western Alps. European Journal of Mineralogy, 4, 10971112.CrossRefGoogle Scholar
Scambelluri, M., Piccardo, G.B., Philippot, P., Robbiano, A. and Negretti, L. (1997) High salinity fluid inclusions formed from recycled seawater in deeply subducted alpine serpentinite. Earth and Planetary Science Letters, 148, 485499.CrossRefGoogle Scholar
Schliestedt, M. and Matthews, A. (1987) Transformation of blueschist to greenschist facies rocks as a consequence of fluid infiltration, Sifnos (Cyclades), Greece. Contributions to Mineralogy and Petrology, 97, 237250.CrossRefGoogle Scholar
Schmidt, M.W. (1995) Lawsonite: Upper pressure stability and formation of higher density hydrous phases. American Mineralogist, 80, 12861292.CrossRefGoogle Scholar
Schmidt, M.W. and Poli, S. (1994) The stability of lawsonite and zoisite at high pressures: Experiments in CASH to 92 kbar and implications for the presence of hydrous phases in subducted lithosphere. Earth and Planetary Science Letters, 124, 105118.CrossRefGoogle Scholar
Schmidt, M.W. and Poli, S. (1998) Experimentally based water budgets for dehydrating slabs and consequences for arc magma generation. Earth and Planetary Science Letters, 163, 361379.CrossRefGoogle Scholar
Schreyer, W. (1995) Ultradeep metamorphic rocks: The retrospective viewpoint. Journal of Geophysical Research, 100, 83538366.CrossRefGoogle Scholar
Scrimgeour, I. and Close, D. (1999) Regional high-pressure metamorphism during intracratonic deformation: the Petermann Orogeny, central Australia. Journal of Metamorphic Geology, 17, 557572.CrossRefGoogle Scholar
Sedlock, R.L. (1999) Evaluation of exhumation mechanisms for coherent blueschists in western Baja California, Mexico. Pp. 2954 in: Exhumation Processes: Normal Faulting, Ductile Flow and Erosion. (Ring, U., Brandon, M.T., Lister, G.S. and Willet, S.D., editors). Special Publication, 154. Geological Society, London.Google Scholar
Selverstone, J., Morteani, G. and Staude, J.M. (1991) Fluid channelling during ductile shearing: transformation of granodiorite into aluminous schist in the Tauern Window, eastern Alps. Journal of Metamorphic Geology, 9, 419431.CrossRefGoogle Scholar
Selverstone, J., Franz, G., Thomas, S. and Getty, S. (1992) Fluid variability in 2 GPa eclogites as an indicator of fluid behaviour during subduction. Contributions to Mineralogy and Petrology, 112, 341357.CrossRefGoogle Scholar
Taylor, H.P. and Coleman, R.G. (1968) O18/O16ratios of coexisting minerals in glaucophane-bearing metamorphic rocks. Geological Society of America Bulletin, 79, 17271756.CrossRefGoogle Scholar
Thompson, J.B., Laird, J. and Thompson, A.B. (1982) Reactions in amphibolite, greenschist, and blueschist. Journal of Petrology, 23, 127.CrossRefGoogle Scholar
Upton, P., Koons, P.O. and Chamberlain, C.P. (1995) Penetration of deformation driven meteoric water into ductile rocks – isotopic and model observations from the Southern Alps, New Zealand. New Zealand Journal of Geology and Geophysics, 38, 535543.CrossRefGoogle Scholar
Vallis, F. and Scambelluri, M (1996) Redistribution of high-pressure fluids during retrograde metamorphism of eclogite-facies rocks (Voltri Massif, Italian Western Alps). Lithos, 39, 8192.CrossRefGoogle Scholar
Van Wyk, N., Valley, J.W. and Austrheim, H. (1996) Oxygen and carbon isotopic constraints on the development of eclogites, Holsnły, Norway. Lithos, 38, 129145.CrossRefGoogle Scholar
Wain, A, and Krabbendam, M. (1999) Metamorphic reactivity and density changes in the formation and exhumation of ultrahigh-pressure rocks. Meeting of the Metamorphic Studies Group: Exhumation of Metamophic Terranes, Rennes, Abstract Volume, p. 98, Mineralogical Society and Geological Society of London.Google Scholar
Wawrzyniec, T., Selverstone, J. and Axen, G.J. (1999) Correlations between fluid composition and deep-seated structural style in the footwall of the Simplon low-angle normal fault, Switzerland. Geology, 27, 715718.2.3.CO;2>CrossRefGoogle Scholar
Wheeler, J. (1991) Structural evolution of a subducted continental sliver: the northern Dora Maira massif, Italian Alps. Journal of Geological Society of London, 148, 11011113.CrossRefGoogle Scholar