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Rock Deformation,Component Migration and 18O/16O Variations during Mylonitization in the Southern Tan-Lu Fault Belt 被引量:1

Rock Deformation,Component Migration and ^(18)O/^(16)O Variations during Mylonitization in the Southern Tan-Lu Fault Belt
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摘要 This paper discusses the relationship between the volume loss, fluid flow and component variations in the ductile shear zone of the southern Tan-Lu fault belt. The results show that there is a large amount of fluids flowing through the shear zone during mylonitization, accompanied with the loss of volume of rocks and variations of elements and oxygen isotopes. The calculated temperature for mylonitization in different mylonites ranges from 446 to 484℃, corresponding to that of 475 to 500℃ for the wall rocks. The condition of differential stress during mylonization has been obtained between 99 and 210 MPa, whereas the differential stress in the wall rock gneiss is 70-78 MPa. The mylonites are enriched by factors of 1.32-1.87 in elements such as TiO2, P2O5, MnO, Y, Zr and V and depleted in SiO2, Na2O, K2O, Al203, Sr, Rb and light REEs compared to their protolith gneiss. The immobile element enrichments are attributed to enrichments in residual phases such as ilmentite, zircon, apatite and epidote in mylonites and are interpreted as due to volume losses from 15% to 60% in the ductile shear zone. The largest amount of SiO2 loss is 35.76 g/100 g in the ductile shear zone, which shows the fluid infiltration. Modeling calculated results of the fluid/rock ratio for the ductile shear zone range from 196 to 1192 by assuming different degrees of fluid saturation. Oxygen isotope changes of quartz and feldspar and the calculated fluid are corresponding to the variations of differential flow stress in the ductile shear zone. With increasing differential flow stress, the mylonites show a slight decrease of δ^18O in quartz, K-feldspar and fluid. This paper discusses the relationship between the volume loss, fluid flow and component variations in the ductile shear zone of the southern Tan-Lu fault belt. The results show that there is a large amount of fluids flowing through the shear zone during mylonitization, accompanied with the loss of volume of rocks and variations of elements and oxygen isotopes. The calculated temperature for mylonitization in different mylonites ranges from 446 to 484℃, corresponding to that of 475 to 500℃ for the wall rocks. The condition of differential stress during mylonization has been obtained between 99 and 210 MPa, whereas the differential stress in the wall rock gneiss is 70-78 MPa. The mylonites are enriched by factors of 1.32-1.87 in elements such as TiO2, P2O5, MnO, Y, Zr and V and depleted in SiO2, Na2O, K2O, Al203, Sr, Rb and light REEs compared to their protolith gneiss. The immobile element enrichments are attributed to enrichments in residual phases such as ilmentite, zircon, apatite and epidote in mylonites and are interpreted as due to volume losses from 15% to 60% in the ductile shear zone. The largest amount of SiO2 loss is 35.76 g/100 g in the ductile shear zone, which shows the fluid infiltration. Modeling calculated results of the fluid/rock ratio for the ductile shear zone range from 196 to 1192 by assuming different degrees of fluid saturation. Oxygen isotope changes of quartz and feldspar and the calculated fluid are corresponding to the variations of differential flow stress in the ductile shear zone. With increasing differential flow stress, the mylonites show a slight decrease of δ^18O in quartz, K-feldspar and fluid.
出处 《Acta Geologica Sinica(English Edition)》 SCIE CAS CSCD 2007年第2期297-311,共15页 地质学报(英文版)
基金 National Natural Science Foundation of China (Grant 40473021) the National 973- Project of the Ministry of Science and Technology of China (2003CB214600) the Foundation of the State Key Laboratory of Geological Processes and Mineral Resources, China University of Geosciences, and the jointed project of Max-Planck-Institute of Society and Chinese Academy of Sciences in Max-Planck-Institute of Nuclear Physics,Heidelberg, Germany.
关键词 mylonitization ductile shear zone component migration oxygen isotopes southern Tan- Lu fault belt mylonitization, ductile shear zone, component migration, oxygen isotopes, southern Tan- Lu fault belt
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参考文献11

  • 1A. Mulch,M. Cosca,M. Handy.In-situ UV-laser 40Ar/39Ar geochronology of a micaceous mylonite : an example of defect-enhanced argon loss[J].Contributions to Mineralogy and Petrology.2002(6)
  • 2J. Kolb,A. F. M. Kisters,S. Hoernes,F. M. Meyer.The origin of fluids and nature of fluid–rock interaction in mid-crustal auriferous mylonites of the Renco mine, southern Zimbabwe[J].Mineralium Deposita (-).2000(2-3)
  • 3Dipl.-Geophys G. -U. Grün,Dipl.-Geophys H. Wallner,Prof. Dr. H. J. Neugebauer.Porous rock deformation and fluid flow — numerical FE-simulation of the coupled system[J].Geologische Rundschau.1989(1)
  • 4Martin Burkhard,Robert Kerrich.Fluid regimes in the deformation of the Helvetic nappes, Switzerland, as inferred from stable isotope data[J].Contributions to Mineralogy and Petrology.1988(4)
  • 5R. Kerrich.Fluid infiltration into fault zones: Chemical, isotopic, and mechanical effects[J].Pure and Applied Geophysics PAGEOPH (-).1986(1-2)
  • 6R. Kerrich,W. S. Fyfe,B. E. German,I. Allison.Local modification of rock chemistry by deformation[J].Contributions to Mineralogy and Petrology.1977(2)
  • 7Jean-Claude C. Mercier,Douglas A. Anderson,Neville L. Carter.Stress in the lithosphere: Inferences from steady state flow of rocks[J].Pure and Applied Geophysics PAGEOPH (-).1977(1-2)
  • 8Robert J. Twiss.Theory and applicability of a recrystallized grain size paleopiezometer[J].Pure and Applied Geophysics PAGEOPH (-).1977(1-2)
  • 9A. Beach,W. S. Fyfe.Fluid transport and shear zones at Scourie, Sutherland: Evidence of overthrusting?[J].Contributions to Mineralogy and Petrology.1972(3)
  • 10Lin,A.Miyata, T, and Wan, T.1998. Tectonic characteristics of the central segment of the Tancheng-Lujiang fault zone, Shandong Peninsula, eastern China[].Tectonophysics.

同被引文献29

  • 1李晓峰,毛景文,朱和平,王瑞廷.四川大渡河黑金台子金矿成矿流体稀土元素地球化学[J].岩石矿物学杂志,2005,24(4):311-318. 被引量:6
  • 2O'Hara K. Fluid flow and volume loss during mylonitizafion: An origin for phyllonite in an overthrust setting, North Carolina, USA[J ]. Tectonophysics, 1988, ( 156): 21-36.
  • 3O'Hara K, William H B. Volume-loss model for trace-element enrichments in mylonites[ J ]. Geology, 1989, ( 19): 893-896.
  • 4Srivastava H B, Hudleston P, Earley Ⅲ D. Strain and possible volume loss in a high-grade ductile shear zone[J ]. Journal of Structural Geology, 1995,17(9): 1217-1231.
  • 5Nebelek P I. General equation for modeling fluid/rocks interaction using trace elements and isotopes[ J ]. Geochimica Cosmochimica Acta, 1987,(51): 1765-1769.
  • 6Lewis A J, Martin R P, Neil C S, et aL The rare earth elements geochemistry of acid-sulfate and acid-sulfate-chlorite geothermal systems from Yellow Stone National Park, Wyoming, USA[J]. Geochimica Cosmochimica Acta, 1997,1 (4): 695-706.
  • 7Whifford D J, Korsch M J, Porritt P M,et al. Rare-earth element mobility around the volcanogenic polymetallic massive sulfide deposits at Que River, Tasmania, Australia [ J ]. Chem Geol, 1988, (68): 105-119.
  • 8Oreskes N, Einaudi T. Origin of rare-earth elements-enriched hematite breccias at the Olympic Dam Cu-U-Au-Ag deposits, Roxby Downs, South Australia[J]. Econ Geol. 1990, (85): 1-28.
  • 9Salvi S, Williams-Jones A E. The role of hydrothermal processes in the granite-hosted Zr, Y, REE deposit at Strange Lake, Quebec/Labrador: Evidence from fluid inclusions [ J ]. Geochim Cosmochim Acta, 1990, (54): 2403-2418.
  • 10Constantopoulos J. Fluid inclusions and rare-earth element geochemistry of fluorite from South Central Idaho[ J ]. Econ Geol, 1988, ( 83): 626-636.

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