中国大陆新生代典型火山区温室气体释放的规模及其成因

郭正府, 张茂亮, 成智慧, 张丽红, 刘嘉麒. 中国大陆新生代典型火山区温室气体释放的规模及其成因[J]. 岩石学报, 2014, 30(11): 3467-3480.
引用本文: 郭正府, 张茂亮, 成智慧, 张丽红, 刘嘉麒. 中国大陆新生代典型火山区温室气体释放的规模及其成因[J]. 岩石学报, 2014, 30(11): 3467-3480.
GUO ZhengFu, ZHANG MaoLiang, CHENG ZhiHui, ZHANG LiHong, LIU JiaQi. Fluxes and genesis of greenhouse gases emissions from typical volcanic fields in China[J]. Acta Petrologica Sinica, 2014, 30(11): 3467-3480.
Citation: GUO ZhengFu, ZHANG MaoLiang, CHENG ZhiHui, ZHANG LiHong, LIU JiaQi. Fluxes and genesis of greenhouse gases emissions from typical volcanic fields in China[J]. Acta Petrologica Sinica, 2014, 30(11): 3467-3480.

中国大陆新生代典型火山区温室气体释放的规模及其成因

  • 基金项目:

    本文受中国科学院战略性先导科技专项(B类)(XDB03010600)、国家自然科学基金重大国际合作研究项目(41020124002)和国家自然科学基金重点研究项目(41130314)联合资助.

Fluxes and genesis of greenhouse gases emissions from typical volcanic fields in China

  • 火山活动能够将地球深部的碳输送到大气圈,是地质碳排放和深部碳循环的重要形式.火山作用不仅在喷发期能够释放大量温室气体,而且在休眠期也能释放巨量的温室气体.在全球变暖的背景下,定量化地研究火山活动对大气圈温室气体含量增加的贡献具有至关重要的意义.本文利用密闭气室法等该领域国际先进的测试技术,测量并计算了长白山、腾冲、五大连池及青藏高原南部的羊八井等典型火山区的温室气体释放规模.结果显示,我国大陆新生代典型火山区向大气圈输送的温室气体总通量约为8.13×106t·a-1,接近107t·a-1级别,相当于全球火山活动导致的温室气体(主要为CO2)释放总量的6%左右.太平洋构造域火山区的温室气体在释放通量与总量方面均低于特提斯构造域,并且太平洋构造域火山气体的地壳混染程度较低,显示出大洋俯冲带与大陆俯冲带火山区温室气体释放的成因差异.
  • 加载中
  • [1]

    Aiuppa A, Federico C, Giudice G, Gurrieri S, Liuzzo M, Shinohara H, Favara R and Valenza M. 2006. Rates of carbon dioxide plume degassing from Mount Etna volcano. Journal of Geophysical Research, 111: B09207, doi: 10.1029/2006JB004307

    [2]

    Allard P, Carbonnelle J, Dajlevic D, Bronec JL, Morel P, Robe MC, Maurenas JM, Faivre-Pierret R, Martin D, Sabroux JC and Zettwoog P. 1991. Eruptive and diffuse emissions of CO2 from Mount Etna. Nature, 351(6325): 387-391

    [3]

    Allard P, Carbonnelle J, Métrich N, Loyer H and Zettwoog P. 1994. Sulphur output and magma degassing budget of Stromboli volcano. Nature, 368(6469): 326-330

    [4]

    Allard P. 1997. Endogenous magma degassing and storage at Mount Etna. Geophysical Research Letters, 24(17): 2219-2222

    [5]

    Bai D, Meju MA and Liao Z. 2001. Magnetotelluric images of deep crustal structure of the Rehai geothermal field near Tengchong, southern China. Geophysical Journal International, 147(3): 677-687

    [6]

    Basu AR, Wang J, Huang W, Xie G and Tatsumoto M. 1991. Major element, REE, and Pb, Nd and Sr isotopic geochemistry of Cenozoic volcanic rocks of eastern China: Implications for their origin from suboceanic-type mantle reservoirs. Earth and Planetary Science Letters, 105(1-3): 149-169

    [7]

    Baubron JC, Allard P and Toutain JP. 1990. Diffuse volcanic emissions of carbon dioxide from Vulcano Island, Italy. Nature, 344(6261): 51-53

    [8]

    Bluth GJS, Doiron SD, Schnetzler CC, Krueger AJ and Walter LS. 1992. Global tracking of the SO2 clouds from the June, 1991 Mount Pinatubo eruptions. Geophysical Research Letters, 19(2): 151-154

    [9]

    Carapezza ML and Federico C. 2000. The contribution of fluid geochemistry to the volcano monitoring of Stromboli. Journal of Volcanology and Geothermal Research, 95(1-4): 227-245

    [10]

    Carapezza ML and Granieri D. 2004. CO2 soil flux at Vulcano (Italy): Comparison between active and passive methods. Applied Geochemistry, 19(1): 73-88

    [11]

    Chen MX. 1992. Advances of studies of geothermal resources in China. Advance in Earth Sciences, 7(3): 9-14 (in Chinese with English abstract)

    [12]

    Cheng ZH, Guo ZF, Zhang ML and Zhang LH. 2012. CO2 flux estimations of hot springs in the Tengchong Cenozoic volcanic field, Yunnan Province, SW China. Acta Petrologica Sinica, 28(4): 1217-1224 (in Chinese with English abstract)

    [13]

    Chiodini G, Cioni R, Guidi M, Raco B and Marini L. 1998. Soil CO2 flux measurements in volcanic and geothermal areas. Applied Geochemistry, 13(5): 543-552

    [14]

    Chiodini G, Cardellini C, Amato A, Boschi E, Caliro S, Frondini F and Ventura G. 2004. Carbon dioxide Earth degassing and seismogenesis in central and southern Italy. Geophysical Research Letters, 31(7), doi: 10.1029/2004GL019480

    [15]

    Coulon C, Maluski H, Bollinger C and Wang S. 1986. Mesozoic and Cenozoic volcanic rocks from central and southern Tibet: 39Ar-40Ar dating, petrological characteristics and geodynamical significance. Earth and Planetary Science Letters, 79(3-4): 281-302

    [16]

    Cox PM, Betts RA, Jones CD, Spall SA and Totterdell IJ. 2000. Acceleration of global warming due to carbon-cycle feedbacks in a coupled climate model. Nature, 408(6809): 184-187

    [17]

    Dasgupta R and Hirschmann MM. 2010. The deep carbon cycle and melting in Earth's interior. Earth and Planetary Science Letters, 298(1-2): 1-13

    [18]

    Ding L, Kapp P, Zhong D and Deng W. 2003. Cenozoic volcanism in Tibet: Evidence for a transition from oceanic to continental subduction. Journal of Petrology, 44(10): 1833-1865

    [19]

    Du JG, Li SQ, Zhao Y, Ren JZ, Sun R and Duanmu H. 1999. Geochemical characteristics of gases from the Wudalianchi volcanic area, northeastern China. Acta Geologica Sinica, 73(2): 225-229

    [20]

    Etiope G, Fridriksson T, Italiano F, Winiwarter W and Theloke J. 2007. Natural emissions of methane from geothermal and volcanic sources in Europe. Journal of Volcanology and Geothermal Research, 165(1-2): 76-86

    [21]

    Fan QC, Sui JL, Wang TH, Li N and Sun Q. 2007. History of volcanic activity, magma evolution and eruptive mechanisms of the Changbai volcanic province. Geological Journal of China Universities, 13(2): 175-190 (in Chinese with English abstract)

    [22]

    Frezzotti ML, Peccerillo A and Panza G. 2009. Carbonate metasomatism and CO2 lithosphere-asthenosphere degassing beneath the Western Mediterranean: An integrated model arising from petrological and geophysical data. Chemical Geology, 262(1-2): 108-120

    [23]

    Garzione CN. 2008. Surface uplift of Tibet and Cenozoic global cooling. Geology, 36(12): 1003-1004

    [24]

    Gerlach TM, Delgado H, McGee KA, Doukas MP, Venegas JJ and Cárdenas L. 1997. Application of the LI-COR CO2 analyzer to volcanic plumes: A case study, volcán Popocatépetl, Mexico, June 7 and 10, 1995. Journal of Geophysical Research, 102(B4): 8005-8019

    [25]

    Graham DW. 2002. Noble gas isotope geochemistry of mid-ocean ridge and ocean island basalts: Characterization of mantle source reservoirs. Reviews in Mineralogy and Geochemistry, 47(1): 247-319

    [26]

    Guo ZF, Wilson M and Liu JQ. 2007. Post-collisional adakites in South Tibet: Products of partial melting of subduction-modified lower crust. Lithos, 96(1-2): 205-224

    [27]

    Guo ZF, Li XH and Zhang ML. 2010. Volcanic activities and deep carbon cycle. Quaternery Sciences, 30(3): 497-505 (in Chinese with English abstract)

    [28]

    Guo ZF, Wilson M, Zhang ML, Cheng ZH and Zhang LH. 2013. Post-collisional, K-rich mafic magmatism in South Tibet: Constraints on Indian slab-to-wedge transport processes and plateau uplift. Contributions to Mineralogy and Petrology, 165(6): 1311-1340

    [29]

    Hahm D, Hilton DR, Cho M, Wei H and Kim KR. 2008. Geothermal He and CO2 variations at Changbaishan intra-plate volcano (NE China) and the nature of the sub-continental lithospheric mantle. Geophysical Research Letters, 35: L22304

    [30]

    Halmer MM, Schmincke HU and Graf HF. 2002. The annual volcanic gas input into the atmosphere, in particular into the stratosphere: A global data set for the past 100 years. Journal of Volcanology and Geothermal Research, 115(3-4): 511-528

    [31]

    Harrison TM, Copeland P, Kidd W, Lovera OM. 1995. Activation of the Nyainqentanghla shear zone: Implications for uplift of the southern Tibetan Plateau. Tectonics, 14(3): 658-676

    [32]

    Hilton DR, McMurtry GM and Goff F. 1998. Large variations in vent fluid CO2/3He ratios signal rapid changes in magma chemistry at Loihi seamount, Hawaii. Nature, 396(6709): 359-362

    [33]

    Hilton DR, Fischer TP and Marty B. 2002. Noble gases and volatile recycling at subduction zones. Reviews in Mineralogy and Geochemistry, 47(1): 319-370

    [34]

    Hinkle ME. 1994. Environmental conditions affecting concentrations of He, CO2, O2 and N2 in soil gases. Applied Geochemistry, 9(1): 53-63

    [35]

    Hoke L, Lamb S, Hilton DR and Poreda RJ. 2000. Southern limit of mantle-derived geothermal helium emissions in Tibet: Implications for lithospheric structure. Earth and Planetary Science Letters, 180(3-4): 297-308

    [36]

    Horn S and Schmincke HU. 2000. Volatile emission during the eruption of Baitoushan Volcano (China/North Korea) ca.969 AD. Bulletin of Volcanology, 61(8): 537-555

    [37]

    Houghton JT, Ding Y, Griggs DJ, Noguer M, van der Linden PJ, Dai X, Maskell K and Johnson C. 2001. Climate Change 2001: The Scientific Basis. Cambridge: Cambridge University Press

    [38]

    Italiano F, Pecoraino G and Nuccio PM. 1998. Steam output from fumaroles of an active volcano: Tectonic and magmatic-hydrothermal controls on the degassing system at Vulcano (Aeolian arc). Journal of Geophysical Research, 103(B12): 29829-29842

    [39]

    Jiang M, Tan HD, Zhang JW, Peng M, Li QQ, Zhang LH, Xu LH and Wang W. 2012. Geophysical mode of Mazhan-Gudong magma chamber in Tengchong volcano-tectonic area. Acta Geoscientica Sinica, 33(5): 731-739 (in Chinese with English abstract)

    [40]

    Jin DC and Cui ZX. 1999. A study of volcanic eruptions in Tianchi volcano, Changbai Mountains recorded in historical documents. Geological Review, 45(7): 304-307 (in Chinese with English abstract)

    [41]

    Kapp JLDA, Harrison TM, Kapp P, Grove M, Lovera OM and Ding L. 2005. Nyainqentanglha Shan: A window into the tectonic, thermal, and geochemical evolution of the Lhasa block, southern Tibet. Journal of Geophysical Research, 110: B08413

    [42]

    Lacis AA, Schmidt GA, Rind D and Ruedy RA. 2010. Atmospheric CO2 Principal control knob governing Earth's temperature. Science, 330(6002): 356-359

    [43]

    Lan TF, Yang TF, Lee HF, Chen YG, Chen CH, Song SR and Tsao S. 2007. Compositions and flux of soil gas in Liu-Huang-Ku hydrothermal area, northern Taiwan. Journal of Volcanology and Geothermal Research, 165(1-2): 32-45

    [44]

    Le Cloarec and Marty B. 1991. Volatile fluxes from volcanoes. Terra Nova, 3(1): 17-27

    [45]

    Lee CTA, Shen B, Slotnick BS, Liao K, Dickens GR, Yokoyama Y, Lenardic A, Dasgupta R, Jellinek M, Lackey JS, Schneider T and Tice MM. 2013. Continental arc-island arc fluctuations, growth of crustal carbonates, and long-term climate change. Geosphere, 9(1): 21-36

    [46]

    Lee HF, Yang TF, Lan TF, Chen CH, Song SR and Tsao S. 2008. Temporal variations of gas compositions of fumaroles in the Tatun Volcano Group, northern Taiwan. Journal of Volcanology and Geothermal Research, 178(4): 624-635

    [47]

    Liu J, Han J and Fyfe WS. 2001. Cenozoic episodic volcanism and continental rifting in Northeast China and possible link to Japan Sea development as revealed from K-Ar geochronology. Tectonophysics, 339(3-4): 385-401

    [48]

    Liu JQ. 1987. Study on geochronology of the Cenozoic volcanic rocks in Northeast China. Acta Petrologica Sinica, (4): 21-31 (in Chinese with English abstract)

    [49]

    Liu JQ. 1988. The Cenozoic volcanic episodes in Northeast China. Acta Petrologica Sinica, (1): 1-10 (in Chinese with English abstract)

    [50]

    Liu JQ. 1999. Volcanoes in China. Beijing: Science Press, 1-193 (in Chinese with English abstract)

    [51]

    Liu QS, Wu ZH, Hu DG et al. 2003. SHRIMP U-Pb zircon dating on Nyainqentanglha granite in central Lhasa block. Chinese Science Bulletin, 48(20): 2170-2175 (in Chinese)

    [52]

    Mann ME, Bradley RS and Hughes MK. 1998. Global-scale temperature patterns and climate forcing over the past six centuries. Nature, 392(6678): 779-787

    [53]

    Mann ME, Bradley RS and Hughes MK. 1999. Northern hemisphere temperatures during the past millennium: Inferences, uncertainties, and limitations. Geophysical Research Letters, 26(6): 759-762

    [54]

    Mazot A and Taran Y. 2009. CO2 flux from the volcanic lake of El Chichón (Mexico). Geofísica Internacional, 48(1): 73-83

    [55]

    Mo X, Zhao Z, Deng J, Flower M, Yu X, Luo Z, Li Y, Zhou S, Dong G, Zhu D and Wang L. 2006. Petrology and geochemistry of postcollisional volcanic rocks from the Tibetan plateau: Implications for lithosphere heterogeneity and collision-induced asthenospheric mantle flow. In: Dilek Y and Pavlides S (eds.). Postcollisional Tectonics and Magmatism in the Mediterranean Region and Asia. Geological Society of America Special Papers, 507-530

    [56]

    Mo X, Niu Y, Dong G, Zhao Z, Hou Z, Zhou S and Ke S. 2008. Contribution of syncollisional felsic magmatism to continental crust growth: A case study of the Paleogene Linzizong volcanic Succession in southern Tibet. Chemical Geology, 250(1-4): 49-67

    [57]

    Mrner NA and Etiope G. 2002. Carbon degassing from the lithosphere. Global and Planetary Change, 33(1-2): 185-203

    [58]

    Nelson KD, Zhao W, Brown L, Kuo J, Che J, Liu X, Klemperer S, Makovsky Y, Meissner R and Mechie J. 1996. Partially molten middle crust beneath southern Tibet: Synthesis of project INDEPTH results. Science, 274(5293): 1684-1688

    [59]

    Newell DL, Jessup MJ, Cottle JM, Hilton DR, Sharp ZD and Fischer TP. 2008. Aqueous and isotope geochemistry of mineral springs along the southern margin of the Tibetan plateau: Implications for fluid sources and regional degassing of CO2. Geochemistry Geophysics Geosystems, 9: Q08014

    [60]

    O'Nions RK and Oxburgh ER. 1988. Helium, volatile fluxes and the development of continental crust. Earth and Planetary Science Letters, 90(3): 331-347

    [61]

    Oppenheimer C. 2003. Ice core and palaeoclimatic evidence for the timing and nature of the great mid-13th century volcanic eruption. International Journal of Climatology, 23(4): 417-426

    [62]

    Rampino MR. 2010. Mass extinctions of life and catastrophic flood basalt volcanism. Proceedings of the National Academy of Sciences of the United States of America, 107(15): 6555-6556

    [63]

    Robock A. 2000. Volcanic eruptions and climate. Reviews of Geophysics, 38(15): 191-219

    [64]

    Royer DL, Berner RA, Montaez IP, Tabor NJ and Beerling DJ. 2004. CO2 as a primary driver of Phanerozoic climate. GSA Today, 14(3): 4-10

    [65]

    Schmincke HU. 2004. Volcanism. Berlin: Springer, 1-325

    [66]

    Shakun JD, Clark PU, He F, Marcott SA, Mix AC, Liu Z, Otto-Bliesner B, Schmittner A and Bard E. 2012. Global warming preceded by increasing carbon dioxide concentrations during the last deglaciation. Nature, 484(7392): 49-54

    [67]

    Shangguan ZG and Wu CZ. 2008. Geochemical features of magmatic gases in the regions of dormant volcanoes in China. Acta Petrologica Sinica, 24(11): 2638-2646 (in Chinese with English abstract)

    [68]

    Shen LC, Wu KY, Xiao Q and Yuan DX. 2011. Carbon dioxide degassing flux from two geothermal fields in Tibet, China. Chinese Science Bulletin, 56(26): 2198-2208 (in Chinese)

    [69]

    Sigurdsson H. 2000. Encyclopedia of Volcanoes. New York: Academic Press, 1-1384

    [70]

    Sinclair AJ. 1974. Selection of threshold values in geochemical data using probability graphs. Journal of Geochemical Exploration, 3(2): 129-149

    [71]

    Sobolev SV, Sobolev AV, Kuzmin DV, Krivolutskaya NA, Petrunin AG, Arndt NT, Radko VA and Vasiliev YR. 2011. Linking mantle plumes, large igneous provinces and environmental catastrophes. Nature, 477(7364): 312-316

    [72]

    Tang J, Deng QH, Zhao GZ et al. 2001. Electric conductivity and magma chamber at the Tianchi volcano area in Changbaishan Mountain. Seismology and Geology, 23(2): 191-200 (in Chinese with English abstract)

    [73]

    Tonani F and Miele G. 1991. Methods for measuring flow of carbon dioxide through soils in the volcanic setting. Napoli, Italy: International Conference on Active Volcanoes and Risk Mitigation

    [74]

    Toutain JP, Sortino F, Baubron JC, Richon P, Surono, Sumarti S and Nonell A. 2009. Structure and CO2 budget of Merapi volcano during inter-eruptive periods. Bulletin of Volcanology, 71(7): 815-826

    [75]

    Wang BD, Chen LK, Xu JF, Liu HF, Chen JL and Kang ZQ. 2011. Identification and petrogenesis of potassic volcanic rocks with "ultrapotassic" characteristics from Maqiang area in Lhasa block. Acta Petrologica Sinica, 27(6): 1662-1674 (in Chinese with English abstract)

    [76]

    Wang G, Wan J, Wang E et al. 2008. Late Cenozoic to recent transtensional deformation across the southern part of the Gaoligong shear zone between the Indian plate and SE margin of the Tibetan Plateau and its tectonic origin. Tectonophysics, 460(1-4): 1-20

    [77]

    Wei H, Liu G and Gill J. 2013. Review of eruptive activity at Tianchi volcano, Changbaishan, Northeast China: Implications for possible future eruptions. Bulletin of Volcanology, 75: 1-14

    [78]

    Wen HY, Yang TF, Guo ZF, Fu CC and Zhang ML. 2011. Gas composition and soil CO2 flux at Changbaishan intra-plate volcano, NE China. AGU Fall Meeting Abstracts, 2484

    [79]

    Werner C, Hurwitz S, Evans W, Lowenstern J, Bergfeld D, Heasler H, Jaworowski C and Hunt A. 2008. Volatile emissions and gas geochemistry of Hot Spring Basin, Yellowstone National Park, USA. Journal of Volcanology and Geothermal Research, 178(4): 751-762

    [80]

    Wignall PB. 2001. Large igneous provinces and mass extinctions. Earth-Science Reviews, 53(1-2): 1-33

    [81]

    Xu J, Pan B, Liu T, Hajdas I, Zhao B, Yu H, Liu R and Zhao P. 2013a. Climatic impact of the Millennium eruption of Changbaishan volcano in China: New insights from high-precision radiocarbon wiggle-match dating. Geophysical Research Letters, 40(1): 54-59

    [82]

    Xu S, Nakai S, Wakita H, Wang X and Chen J. 1994. Helium isotopic compositions in Quaternary volcanic geothermal area near Indo-Eurasian collisional margin at Tengchong, China. In: Matsuda J (ed.). Noble Gas Geochemistry and Cosmochemistry. Tokyo: Terra Scientific Publications Co., 306-313

    [83]

    Xu S, Zheng GD, Nakai SI, Wakita H, Wang XB and Guo ZF. 2013b. Hydrothermal He and CO2 at Wudalianchi intra-plate volcano, NE China. Journal of Asian Earth Sciences, 62: 526-530

    [84]

    Yang QL and Xin KD. 1991. A brief introduction to the geothermal system of the Yangbajain geothermal field. Geological Review, 37(3): 283-287 (in Chinese with English abstract)

    [85]

    Yang TF, Sano Y and Song SR. 1999. 3He/4He ratios of fumaroles and bubbling gases of hot springs in Tatun Volcano Group, North Taiwan. Nuovo Cimento C Geophysics Space Physics C, 22: 281-286

    [86]

    Yin J, Jull AJ, Burr GS and Zheng Y. 2012. A wiggle-match age for the Millennium eruption of Tianchi Volcano at Changbaishan, northeastern China. Quaternary Science Reviews, 47: 150-159

    [87]

    Zhang CK, Zhang XK, Zhao JR, Liu BF, Zhang JS, Yang ZX, Hai Y and Sun GW. 2002. Crust-mantle structure of the Changbaishan Tianchi volcanic region and its vicinity: An exploratory study and inferences. Chinese Journal of Geophysics, 45(6): 862-871

    [88]

    Zhang ML, Guo ZF, Cheng ZH, Zhang LH, Guo WF, Yang CY, Fu QZ and Wen XY. 2011. Greenhouse gases flux estimation of hot springs in Changbaishan volcanic field, NE China. Acta Petrologica Sinica, 27(10): 2898-2904 (in Chinese with English abstract)

    [89]

    Zhao DP, Tian Y, Lei JS, Liu L and Zheng SH. 2009. Seismic image and origin of the Changbai intraplate volcano in East Asia: Role of big mantle wedge above the stagnant Pacific slab. Physics of the Earth and Planetary Interiors, 173(3-4): 197-206

    [90]

    Zhao P, Xie EJ, Dor J, Jin J, Hu XC, Du SP and Yao ZH. 2002. Geochemical characteristics of geothermal gases and their geological implications in Tibet. Acta Petrologica Sinica, 18(4): 539-550 (in Chinese with English abstract)

    [91]

    Zhao W, Nelson K, Che J, Quo J, Lu D, Wu C and Liu X. 1993. Deep seismic reflection evidence for continental underthrusting beneath southern Tibet. Nature, 366(6455): 557-559

    [92]

    Zhao YY, Han JY, Guo LH, Qian ZH, Zhou YZ, Nie FJ and Li ZQ. 2008. Characteristics and geological significance of mineralogy and fabrics for the hot spring cesium deposit occurring within the Targejia district, Tibet. Acta Petrologica Sinica, 24(3): 519-530 (in Chinese with English abstract)

    [93]

    Zhou S, Mo X, Zhao Z, Qiu R, Niu Y, Guo T and Zhang S. 2010. 40Ar/39Ar geochronology of post-collisional volcanism in the middle Gangdese Belt, southern Tibet. Journal of Asian Earth Sciences, 37(3): 246-258

    [94]

    Zhu BQ, Mao CX, Lugmair GW and Macdougall JD. 1983. Isotopic and geochemical evidence for the origin of Plio-Pleistocene volcanic rocks near the Indo-Eurasian collisional margin at Tengchong, China. Earth and Planetary Science Letters, 65(2): 263-275

    [95]

    Zou HB, Fan QC and Zhang HF. 2010. Rapid development of the great Millennium eruption of Changbaishan (Tianchi) Volcano, China/North Korea: Evidence from U-Th zircon dating. Lithos, 119(3-4): 289-296

    [96]

    陈墨香. 1992. 中国地热资源研究的进展. 地球科学进展, 7(3): 9-14

    [97]

    成智慧, 郭正府, 张茂亮, 张丽红. 2012. 腾冲新生代火山区温泉CO2气体排放通量研究. 岩石学报 28(4): 1217-1224

    [98]

    樊祺诚, 隋建立, 王团华, 李霓, 孙谦. 2007. 长白山火山活动历史、岩浆演化与喷发机制探讨. 高校地质学报, 13(2): 175-190

    [99]

    郭正府, 李晓惠, 张茂亮. 2010. 火山活动与深部碳循环的关系. 第四纪研究, 30(3): 497-505

    [100]

    姜枚, 谭捍东, 张聿文, 彭淼, 李庆庆, 张立树, 许乐红, 王伟. 2012. 云南腾冲火山构造区马站-固东岩浆囊的地球物理模式. 地球学报, 33(5): 731-739

    [101]

    金东淳, 崔钟燮. 1999. 长白山天池火山喷发历史文献记载的考究. 地质论评, 45(7): 304-307

    [102]

    刘嘉麒. 1987. 中国东北地区新生代火山岩的年代学研究. 岩石学报, (4): 21-31

    [103]

    刘嘉麒. 1988. 中国东北地区新生代火山幕. 岩石学报, (1): 1-10

    [104]

    刘嘉麒. 1999. 中国火山. 北京: 科学出版社, 1-193

    [105]

    刘琦胜, 吴珍汉, 胡道功等. 2003. 念青唐古拉花岗岩锆石离子探针U-Pb同位素测年. 科学通报, 48(20): 2170-2175

    [106]

    上官志冠, 武成智. 2008. 中国休眠火山区岩浆来源气体地球化学特征. 岩石学报, 24(11): 2638-2646

    [107]

    沈立成, 伍坤宇, 肖琼, 袁道先. 2011. 西藏地热异常区CO2脱气研究: 以朗久和搭格架地热区为例. 科学通报, 56(26): 2198-2208

    [108]

    汤吉, 邓前辉, 赵国泽等. 2001. 长白山天池火山区电性结构和岩浆系统. 地震地质, 23(2): 191-200

    [109]

    王保弟, 陈陵康, 许继峰, 刘鸿飞, 陈建林, 康志强. 2011. 拉萨地块麻江地区具有"超钾质"成分的钾质火山岩的识别及成因. 岩石学报, 27(6): 1662-1674

    [110]

    杨期隆, 辛奎德. 1991. 西藏羊八井地热田简介. 地质论评, 37(3): 283-287

    [111]

    张茂亮, 郭正府, 成智慧, 张丽红, 郭文峰, 杨灿尧, 付庆州, 温心怡. 2011. 长白山火山区温泉温室气体排放通量研究. 岩石学报, 27(10): 2898-2904

    [112]

    赵平, 谢鄂军, 多吉, 金建, 胡先才, 杜少平, 姚中华. 2002. 西藏地热气体的地球化学特征及其地质意义. 岩石学报, 18(4): 539-550

    [113]

    赵元艺, 韩景仪, 郭立鹤, 钱作华, 周永章, 聂凤军, 李振清. 2008. 西藏搭格架热泉型铯矿床矿物学与矿石组构特征及地质意义. 岩石学报, 24(3): 519-530

  • 加载中
计量
  • 文章访问数:  6484
  • PDF下载数:  4393
  • 施引文献:  0
出版历程
收稿日期:  2014-02-20
修回日期:  2014-05-30
刊出日期:  2014-11-30

目录