簡易檢索 / 詳目顯示

研究生: 林伯炫
Lin, Po-Hsuan
論文名稱: 北祁連褶皺帶門源及其鄰近地區基盤岩之大陸回春作用
The continental rejuvenation of the basement rocks of Man Yuan and adjacent to districts, north Qilian suture belt, NW of mainland China
指導教授: 楊宏儀
Yang, Houng-Yi
學位類別: 碩士
Master
系所名稱: 理學院 - 地球科學系
Department of Earth Sciences
論文出版年: 2003
畢業學年度: 91
語文別: 中文
論文頁數: 136
中文關鍵詞: 大陸回春作用大陸再造地體再活化中祁連深大斷裂帶
外文關鍵詞: continental rejuvenation, continental reworking, reactivation, central Qilian deep fracture zone
相關次數: 點閱:72下載:3
分享至:
查詢本校圖書館目錄 查詢臺灣博碩士論文知識加值系統 勘誤回報
  • 作者研究中國大陸北祁連褶皺帶中段甘肅青海省交界的門源盆地區內出露於盤坡、南石頭溝、碟青晏、朶大灘等地的基盤岩。在1960~1970年代大陸出版的二十萬分之一的地質圖上標示門源盆地出露的基盤岩為下古生代的地層前寒武紀的基盤。本研究工作的基盤岩的岩樣其岩性分別是:盤坡地區兩個高角閃岩相的矽線石-黑雲母片麻岩,南石頭溝地區兩個綠片岩相的黑雲母-白雲母片岩,碟青晏地區一個綠片岩相的黑雲母-石英片岩及兩個高角閃岩相的黑雲母-白雲母片麻岩、黑雲母-石英片麻岩,以及朶大灘地區一個低角閃岩相的黑雲母-白雲母-鉀長石片岩等共八個岩樣。利用氬-氬同位素定年方法得出它們的年齡分別是盤坡:399.0Ma(雷射探針法)和398.0 Ma(或401.0 Ma)(高溫爐),南石頭溝:221.0Ma(雷射探針法)和262.0 Ma(高溫爐),碟青晏:402.0Ma,410.0 Ma,409.0 Ma(雷射探針法),朶大灘:407.0Ma(雷射探針法)。根據氬-氬同位素定年的結果暗示門源地區的基盤岩在晚志留紀至早泥盆紀遭受一次的大陸再造作用(Continental reworking)及在二疊紀到三疊紀遭受另外一次的大陸再造作用,在岩石學上的暗示為門源盆地的基盤岩在晚志留紀至早泥盆紀遭受一次以角閃岩相為主的變質作用的大陸再造作用及在二疊紀到三疊紀遭受另外一次以綠片岩相為主的變質作用的大陸再造作用,顯示大區域尺度的中祁連深大斷裂帶在二疊紀到三疊紀有一次地體再活化的現象。

    關鍵字:大陸回春作用、大陸再造、地體再活化、中祁連深大斷裂帶
    Keywords: continental rejuvenation, continental reworking, reactivation,
    central Qilian deep fracture zone

    The petrologic and geochronologic constraints of the basement rocks of Man Yuan basin, north Qilian suture belt, were studied with the EDS analyses and 40Ar /39 Ar thermochronology. The author took advantages of Molybdenum furnace (GD150) and continuous mode Laser probe (VG3600) on “pure’ minerals and found that the domain structure and diffusion parameters obtained from his biotite samples could be used to model a thermal history of back arc basin, Man Yuan basin. The basement rocks were collected from Pampo, Nanshihtougou, Daechingyen, and Dodatang in Man Yuan district. According to the geological map published by mainland China in 1965, these basement rocks Precambrian. Now we have argon isotopes ages of these basement rocks: Pampo area rock samples, there are two rock samples of bearing sillimanite-biotite gneiss: 399.0Ma and 398.0 Ma, were revealed by Laser probe and Ta furnace, respectively. Nanshihtou Gao area rock samples, there are two rock samples of bearing biotite-muscovite schist: 221.0Ma and 262.0 Ma, were revealed by Laser probe and Ta furnace, respectively. Daechingyen rock sample, there are two rock samples of bearing biotite-muscovite gneiss and one rock sample of bearing biotite-quartz schist: 410.0Ma, 409.0 Ma and 402.0 Ma, were revealed by Laser probe. Dodatang there is only one rock sample of bearing biotite-muscovite schist: 407.0 Ma, was revealed by Laser probe. There is a geochronologic implication about Man Yuan basin area, according to argon-argon dating method, that these basement rocks could be suffered at least once “continental reworking” in late Silurian to early Devonian and suffered another time “continental reworking” across P-T boundary. As well as a petrologic implication revealed that these basement rocks could be suffered at least once amphibolite facies of metamorphism of “continental reworking” in late Silurian to early Devonian and suffered another time green schist facies of metamorphism of “continental reworking” between Permian period and Triassic period. Finally, no region in the world offers such marvelous, amazing continental reactivation phenomenon as central Qilian deep fracture zone does.

    目錄 摘要 Abstract 誌謝 目錄……………………………………………………………………………………I 表目錄…………………………………………………………………………………III 圖目錄…………………………………………………………………………………IV 附表目錄………………………………………………………………………………VI 附錄目錄………………………………………………………………………………VII 礦物名稱縮寫表………………………………………………………………………VIII 第一章 緒 論………………………………............................................1 一、大陸回春作用…………………………..…………………………………………1 1.1大陸再造作用……………..………………………………..…. …………...…2 1.2地體再活化.........................................................3 1.3同位素的回春作用(Rejuvenation of isotopes)……………………………...3 二、地質背景…………………………………………………………………………..4 三、研究之目的與前人研究…………………………………………………………..7 第二章 研究方法...................................................................12 2.1 野外調查與採樣工作………………………………………………………….......................12 2.2 岩石學的研究方法……………………………………………………….........................12 2.2.1岩相學的觀察…………………………………………………………….....................12 2.2.2 礦物化學分析…………………………………………………………….....................13 2.3 熱定年學的方法………………………………………………………………...................15 2.3.1氬同位素應用於熱定年學的理論…………………………………. ………...............................................................15 2.3.2標本的前處理……………………………………………………………......18 2.3.3樣本的熱定年結果的控制因素…………………………………….......................................19 (A)標準樣本的照射通量的不確定(uncertainty of flux monitor)…………….19 (B)分析礦物的純度要求………………………………………………………….......................19 (C)分析的歧視度(device discrimination)……………………………………….......................................20 (D)分析儀器採用的標準空氣的校正…………………………………….......................................20 (E)燒空包(blank)校正……………………………………………………………...20 2.4 全岩地球化學分析………………………………………………………………...................21 第三章 研究結果與討論………………………………………………………………...................22 3.1 野外調查工作………………………………………………………………….................22 3.2 岩相學的觀察……………………………………………………………………….............22 3.2.1 盤坡地區的岩樣…………………………………………………………….....................22 3.2.2南石頭溝地區的岩樣……………………………………………………….........................23 3.2.3碟青晏地區的岩樣………………………………………………………….......................26 3.2.4朵大灘地區的岩樣……………………………………………………….........................28 3.3礦物化學…………………………………………………………………………….........31 A-長石……………………………………………………………………...............31 B-雲母類……………………………………………………………………...............31 C-矽線石-紅柱石………………………………………………………….......................34 D-石榴子石………………………………………………………………...................34 E-角閃石………………………………………………………….......................34 F-輝石……………………………………………………………………….........36 G-綠泥石……………………………………………………………………...............38 3.4 變質度的判別…………………………………………………………………….39 3.5樣本的熱定年結果與解釋………………………………………………………….......................56 第四章 綜合討論……………………………………………………………………….............66 4.1 大陸回春作用的岩石學上的證據…………………………………………….................................66 4.2大陸回春作用在熱定年學上的意義…………………………………………...................................68 4.3斷層作用扮演的角色………………………………………………………….......................70 第五章 結論…………………………………………………………………………….........77 參考文獻……………………………………………………………………………….79 圖版 附表 附錄

    王雲山和陳基娘(1987). 青海省及毗鄰地區變質岩帶和變質作用, 地質礦產部地質專報三,岩石、礦物、地球化學第六號,地質出版社,北京, p.4-8,113-130
    中國地球物理學會(1995). 格爾木至額濟纳旗地學斷面研究文集: 地球物理學報, 38, 增刊Ⅱ, p.166
    甘肅省地質礦產局(1989). 甘肅省區域地質誌,地質出版社,北京, p.11-12
    左國朝,吳茂炳,毛景文和張招崇(1999a). 北祁連西段早古生代構造演化史,甘肅地質學報,第八卷,第一期, p.6-13
    任紀舜等(1980) 中國大地構造及其演化,北京,地質出版社
    何春蓀(1990). 普通地質學,五南圖書出版公司印行,臺北市,p.45,469-485
    林立虹(1995). 蘇魯超高壓變質帶之熱定年學研究, 國立台灣大學地質科學系研究所碩士論文, p.16,22
    青海省地質礦產局(1991). 青海省區域地質誌,地質出版社,北京, p.8-13
    許芳瑞(2000). 雲南高黎貢山剪切帶之熱定年學研究, 國立台灣大學地質科學研究所碩士論文,p.16, 54
    陳汝勤、莊文星 岩石學(1996). 聯經出版事業公司,臺北, p.288
    陳維民(2002). 由Ar﹣Ar定年與溫壓途徑看中祁連變質基盤岩之再活化與地體演化,第三屆海峽兩岸祁連山及其鄰區地學研討會,p.147-148
    夏林圻,夏祖春,徐學義(1996). 北祁連山海相火山岩岩石成因,地質出版社,北京
    夏林圻,夏祖春,左國朝等(1998). 祁連山及鄰區火山作用與成礦,地質出版社,北京,p.6-7,p.61
    黄汲清(1965). 中國的優地槽和冒地槽以及它們的多旋回發展,中國工業出版社,北京
    馮益民,何世平(1996). 祁連山大地構造與造山作用,地質出版社,北京, p.4
    楊宏儀(2001). 中國西北地區祁連褶皺帶的板塊構造,中國地質學會九十年年會暨學術研討會, p.61-63
    楊宏儀(2002). 中國西北地區祁連地體的再活化作用, 2002年國科會期中報告,p.5
    楊宏儀(2003). 中國大陸西北地區北祁連山東段火山岩的地球化學及其在板塊構造和岩漿成因上的意義,年中國地質學會九十二年年會暨學術研討會,p.333
    劉思妤(1999). 中國中祁連湟源群變質泥岩之溫壓演化與地體構造隱示,國立中央大學地球物理研究所碩士論文,摘要及p.177
    劉瑩三(2002). 中國東部大別山地區定年學研究及其意義, 第三屆海峽兩岸祁連山及其鄰區地學研討會-中央造山帶的演化, p.28

    References
    Blatt, H. & Tracy, R.J. (2001). Petrology: Igneous, Sedimentary, and Metamorphic, 2nd edition, Freeman, New York, p.379, 405, 406, 407, 408
    Butler, R.W.H., Holdsworth, R.E. & LLoyd, G.D. (1997). The role of basement reactivation during continental deformation, Journal of the Geological Society, London, 154, p.69-71
    Elhers, E.G. & Blatt, H. (1981) Petrology: Igneous, Sedimentary, and Metamorphic, Freeman, New York, p.547
    England, P.C. (1987). Diffuse continental deformation; length scales, rates and metamorphic evolution, Philosophical Transactions of the Royal Society, London, 321, p.2-22
    England, P.C. & Houseman, G.A. (1985). The role of lithospheric strength heterogeneitiesin the tectonics of Tibet and neighbouring regions, Nature, 315, p.297-301
    Faure, G. (1977). Principles of isotope geology, 2nd edition, John Wiley & Sons, Inc., New York, p.93, 94, 95
    Holdsworth, R.E., Stewart, M., Imber, J. & Strachan, R.A. (1997). Continental reactivation and reworking/: The structure and rheological evolution of reactivated continental fault zones: a review and case study, Geological Society, London, Special Publication, 184, p.115-137
    Holdsworth, R.E., Butler, C.A. & Roberts, A.M. (1997). The recognition of reactivation during continental deformation, Journal of the Geological Society, London, 154, p.73-78
    Hyndman, D.W. (1985) Petrology of igneous and metamorphic rocks, 2nd edition, McGraw-Hill Book Company, U.S.A, p.498-p.505
    Kearey, P. & Vine, F.J. (2001). Global Tectonics, 2nd edition, Blackwell Science, UK, p.194-197
    Klein, C. & Hurlbut, C.S., Jr. (1999). Manual Mineralogy, Revised 21st Edition, John Wiley & Sons, Inc., New York, p.455, 583, 586
    Lister, G.S., Forster, M.A. & Rawling, T.J. (2001). Continental reactivation and reworking/: Episodicity during orogenesis, Geological Society, London, Special Publication, 184, p.89-113
    Lo, C.H. (2002). Laser fusion argon-40/argon-39 ages of Darwin impact glass, Meteoritics & Planetary Science 37, p.6
    Lo, C.H. & Lee, C.Y. (1994). 40Ar/39Ar method of K-Ar age determination of geological samples using Tsing-Hua Open-Pool Reactor (THOR) , Journal of the Geological Society, China 37, p.1-22
    Lo, C.H. & Onstott, T.C. (1989). 39Ar recoil artifacts in chloritized biotite, Geochim.Cosmochim. Acta 53, p.2697-2711
    Lo, C.H., Onstott, T.C. & Wang Lee, C. (1993). 40Ar/39Ar dating of plutonic/metamorphic rocks from Chinmen Island of southeast China and its tectonic implications, Journal of the Geological Society, China 36, p.57-66
    Lucassen, F. & Franz, G. (1996). Franz Magmatic arc metamorphism:petrology and temperature history of metabasic rocks in the coastal cordillera of north Chile, Journal of metamorphic Geology, vol.14, p.249
    McDougall, I. & Harrison, T. M. (1999). Geochronology and Thermochronology by the 40Ar/39Ar Method, 2nd edition, Oxford University Press, Inc., Oxford, p.11, 13, 49, 59, 67, 79, 91, 97, 157, 158, 159, 169, 170, 171, 212
    Miyashiro, A. (1973). Metamorphism and Metamorphic belts, William Clowes & Sons Ltd, London, p.300, p.301
    Neil, E.A. & Houseman, G.A. (1997). Geodynamics of the Tarim Basin and the Tien Shan in central Asia, Tectonics, 16, p.571-584
    Nesse, W.D. (1991). Introduction to Optical Mineralogy, 2nd edition, Oxford University Press, p.159, 173, 270
    Ozima, M. & Podosek, F.A. (1983). Noble gas geochemistry, Cambridge University Press, London, p.367
    Segar, D.A. (1998). Introduction to Ocean Sciences, Wadsworth, Belmont California, p.85
    Sonder, L. & England, P.C. (1986). Vertical averages of rheology of the continental lithospheric; relation to thin sheet parameters, Earth and Planetary Science Letter, 77, p.81-90
    Spear, F.S.(1995). Metamorphic phase Equilibria and Pressure-Temperature-Time Paths, Mineralogical society of America, Washington, D.C., p.396, 415
    Sutton, J. & Watson, J.V. (1986). Architecture of the continental lithosphere, Philosophical Transactions of the Royal Society, London, A317, p.5-12
    Turner, F.J. (1968). Metamorphic petrology mineralogical and field aspects, McGraw-Hill Book Company, New York, p.180, 181
    Winslow, D.M. (1996). Geochronologic constraints on syntaxial development in the Nanga Parbat region, Pakistan., Tectonics, vol.15, p.1298
    Xu, Z.Q., Zhang, J.X. & Li., H.B., (2000). Architecture and orogeny of the northern Qilian orogenic belt, Northwestern China, Jounal of the Geological Society of China, vol.43, No.1, p.125-141
    Yardley, B.W.D. (1989). An introduction to Metamorphic Petrology, John Wiley & Sons, Inc., New York, p.94
    Ziegler, P.A., Cloetingh, S., & Van Wees, J.D. (1995). Dynamics of the intra-plate compressional deformation: the Alpine foreland and other examples, Tectonophysics, 252, p.7-59

    下載圖示 校內:立即公開
    校外:2003-09-01公開
    QR CODE