Page 10 - i1052-5173-31-6
P. 10

Sequence and petrogenesis of the Jurassic volca-  Royden, L.H., Burchfiel, B.C., King, R.W., Wang,   nology and geochemistry of the Early Jurassic
          nic rocks (Yeba Formation) in the Gangdese arc,   E., Chen, Z., Shen, F., and Liu, Y., 1997, Surface   Yeba Formation volcanic rocks in southern Ti-
          southern Tibet: Implications for the Neo-Tethyan   deformation  and  lower  crustal  flow  in  eastern   bet: Initiation of back-arc rifting and crustal ac-
          subduction: Lithos, v. 312–313, p. 72–88, https://  Tibet: Science, v. 276, 5313, p. 788–790, https://  cretion in the southern Lhasa Terrane: Lithos,
          doi.org/10.1016/j.lithos.2018.04.026.  doi.org/10.1126/science.276.5313.788.  v.  278-281, p.  477–490,  https://doi.org/10.1016/
         Molnar, P., and Stock, J.M., 2009, Slowing of India’s   Sanchez, V.I., Murphy, M.A., Robinson, A.C., Lapen,   j.lithos.2017.02.013.
          convergence with Eurasia since 20 Ma and its im-  T.J., and Heizler, M.T., 2013, Tectonic evolution of   Wen, D.R., Liu, D., Chung, S.L., Chu, M.F., Ji, J.,
          plications for Tibetan mantle dynamics: Tectonics,   the India–Asia suture zone since Middle Eocene   Zhang, Q., Song, B., Lee, T.Y., Yeh, M.W., and
          v. 28, no. 3, https://doi.org/10.1029/2008TC002271.  time, Lopukangri area, south-central Tibet: Jour-  Lo, C.H., 2008, Zircon SHRIMP U-Pb ages of
         Molnar, P., and Tapponnier, P., 1978, Active tecton-  nal of Asian Earth Sciences, v.  62, p.  205–220,   the Gangdese Batholith and implications for
          ics of  Tibet:  Journal  of Geophysical  Research.   https://doi.org/10.1016/j.jseaes.2012.09.004.  Neotethyan subduction in southern Tibet: Chem-
          Solid Earth, v. 83, B11, p. 5361–5375, https://doi   Styron, R., Taylor, M., and Okoronkwo, K., 2010,   ical Geology, v. 252, no. 3–4, p. 191–201, https://
          .org/10.1029/JB083iB11p05361.       Database of active structures from the Indo-  doi .org/10.1016/j.chemgeo.2008.03.003.
         Molnar, P., England, P., and Martinod, J., 1993,   Asian collision: Eos, v. 91, no. 20, p. 181–182,   Wittlinger, G., Vergne, J., Tapponnier, P., Farra, V.,
          Mantle dynamics, uplift of the Tibetan Plateau,   https://doi.org/10.1029/2010EO200001.  Poupinet, G., Jiang, M., Su, H., Herquel, G., and
          and the Indian monsoon: Reviews of Geophys-  Styron, R.H., Taylor, M.H., Sundell, K.E., Stockli,   Paul, A., 2004, Teleseismic imaging of subduct-
          ics, v.  31, no.  4, p.  357–396,  https://doi.org/   D.F., Oalmann, J.A., Möller, A., McCallister,   ing lithosphere and Moho offsets beneath west-
          10.1029/ 93RG02030.                 A.T., Liu, D., and Ding, L., 2013, Miocene initia-  ern Tibet: Earth and Planetary Science Letters,
         Murphy, M.A., Yin, A., Harrison, T.M., Durr, S.B.,   tion and acceleration of extension in the South   v.  221, no.  1–4, p.  117–130,  https://doi.org/
          Ryerson, F.J., and Kidd, W.S.F., 1997, Did the Indo-  Lunggar rift, western Tibet: Evolution of an ac-  10.1016/S0012-821X(03)00723-4.
          Asian collision alone create the Tibetan plateau?:   tive detachment system from structural mapping   Wolff, R., Hetzel, R., Dunkl, I., Xu, Q., Bröcker,
          Geology, v. 25, no. 8, p. 719–722, https://doi .org/   and (U-Th)/He thermochronology: Tectonics,   M., and Anczkiewicz, A.A., 2019, High-angle
                                                                                  normal faulting at the Tangra Yumco Graben
          10.1130/0091-7613(1997)025<0719:DTIACA>   v. 32, no. 4, p. 880–907, https://doi.org/10.1002/
          2.3.CO;2.                           tect.20053.                         (Southern Tibet) since ~15 Ma: The Journal of
         Nábělek,  J.,  Hetényi,  G.,  Vergne,  J.,  Sapkota,  S.,   Styron, R., Taylor, M., and Sundell, K., 2015,   Geology, v. 127, no. 1, p. 15–36, https://doi.org/
                                              Accelerated extension of Tibet linked to the
                                                                                  10.1086/700406.
          Kafle, B., Jiang, M., Su, H., Chen, J., and Huang,                    Xu, Q., Zhao, J., Yuan, X., Liu, H., and Pei, S., 2015,
          B.S., 2009, Underplating in the Himalaya-Tibet   northward underthrusting of Indian crust:   Mapping crustal structure beneath southern Tibet:
                                              Nature Geoscience, v.  8, no.  2, p.  131–134,
          collision zone revealed by the Hi-CLIMB ex-  https:// doi  .org/  10.1038/  ngeo2336.  Seismic evidence for continental crustal under-
          periment: Science, v. 325, no. 5946, p. 1371–  Sundell, K.E., Taylor, M.H., Styron, R.H., Stockli,   thrusting: Gondwana Research, v.  27, no.  4,
          1374, https://doi.org/10.1126/science.1167719.  D.F., Kapp, P., Hager, C., Liu, D., and Ding, L.,   p. 1487–1493,  https://doi.org/10.1016/j.gr.2014
         Owens, T.J., and Zandt, G., 1997, Implications of   2013, Evidence for constriction and Pliocene ac-  .01.006.
          crustal property variations for models of Tibetan   celeration of east-west extension in the North   Yan, D., Li, M., Bi, W., Weng, B., Qin, T., Wang, J.,
          plateau evolution:  Nature, v.  387, no.  6628,   Lunggar rift region of west central Tibet: Tec-  and Do, P., 2019, A data set of inland lake catch-
          p. 37–43, https://doi.org/10.1038/387037a0.  tonics, v. 32, no. 5, p. 1454–1479, https://doi .org/   ment boundaries for the Qiangtang Plateau: Sci-
         Paterson, S.R., and Ducea, M.N., 2015, Arc mag-  10.1002/tect.20086.     entific Data, v. 6, no. 1, p. 1–11.
          matic tempos: Gathering the evidence: Elements,   Taylor, M., and Yin, A., 2009, Active structures of   Yin, A., and Harrison, T.M., 2000, Geologic evolu-
          v. 11, no. 2, p. 91–98, https://doi.org/ 10.2113/   the Himalayan-Tibetan orogen and their rela-  tion of the Himalayan-Tibetan orogen: Annual
          gselements .11.2.91.                tionships to earthquake distribution, contempo-  Review of Earth and Planetary Sciences, v. 28,
         Profeta, L., Ducea, M.N., Chapman, J.B., Paterson,   rary strain field, and Cenozoic volcanism: Geo-  no. 1, p. 211–280, https://doi.org/10.1146/annurev
          S.R., Gonzales, S.M.H., Kirsch, M., Petrescu, L.,   sphere, v.  5, no.  3, p.  199–214,  https://doi .org/   .earth.28.1.211.
          and DeCelles, P.G., 2015, Quantifying crustal   10.1130/GES00217.1.   Zhang, K.J., Zhang, Y.X., Tang, X.C., and Xia, B.,
          thickness over time in magmatic arcs: Scientific   van Hinsbergen, D.J., Lippert, P.C., Dupont-Nivet,   2012, Late Mesozoic tectonic evolution and growth
          Reports, v.  5, 17786,  https://doi.org/10.1038/  G., McQuarrie, N., Doubrovine, P.V., Spakman,   of the Tibetan plateau prior to the Indo-Asian colli-
          srep17786.                          W., and Torsvik, T.H., 2012, Greater India Basin   sion:  Earth-Science  Reviews,  v.  114,  no.  3–4,
         Pullen, A., Kapp, P., Gehrels, G.E., Ding, L., and   hypothesis and a two-stage Cenozoic collision   p. 236–249, https://doi.org/10.1016/ j.earscirev .2012
          Zhang, Q., 2011, Metamorphic rocks in central   between India and Asia: Proceedings of the Na-  .06.001.
          Tibet:  Lateral  variations and  implications for   tional Academy of Sciences of the United States   Zhu, D.C., Wang, Q., Cawood, P.A., Zhao, Z.D., and
          crustal structure: Geological Society of America   of America, v. 109, no. 20, p. 7659–7664, https://  Mo,  X.X., 2017,  Raising  the  Gangdese  moun-
          Bulletin, v. 123, no. 3–4, p. 585–600, https://doi   doi.org/10.1073/pnas.1117262109.  tains in southern Tibet: Journal of Geophysical
          .org/10.1130/B30154.1.             Volkmer, J.E., Kapp, P., Guynn, J.H., and Lai, Q.,   Research. Solid Earth, v. 122, no. 1, p. 214–223,
         Rowley, D.B., 1996, Age of initiation of collision   2007, Cretaceous–Tertiary structural evolution of   https://doi.org/10.1002/2016JB013508.
          between India and Asia: A review of stratigraph-  the north central Lhasa terrane, Tibet: Tectonics,
          ic data: Earth and Planetary Science Letters,   v. 26, no. 6, https://doi.org/10.1029/2005TC001832.  Manuscript received 16 apr. 2020
          v. 145, no. 1–4, p. 1–13, https://doi.org/10.1016/  Wei, Y., Zhao, Z., Niu, Y., Zhu, D.C., Liu, D., Wang,   revision received 1 sept. 2020
          S0012-821X(96)00201-4.              Q., Hou, Z., Mo, X., and Wei, J., 2017, Geochro-  Manuscript accepted 8 Mar. 2021




















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