[an error occurred while processing this directive] 世界地质 2019, 38(4) 931-943 DOI:   10.3969/j.issn.1004-5589.2019.04.005  ISSN: 1004-5589 CN: 22-1111/P

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吉林中部
锆石U-Pb年代学
岩石地球化学
江密峰
本文作者相关文章
孙永刚
李碧乐
王聚胜
王永胜
张旭
詹天宇
PubMed
Article by Sun Y
Article by Li B
Article by Wang J
Article by Wang Y
Article by Zhang X
Article by Zhan T
吉林中部江密峰花岗闪长岩锆石U-Pb年代学和岩石地球化学特征
孙永刚1,2, 李碧乐1, 王聚胜2, 王永胜2, 张旭2, 詹天宇2
1. 吉林大学 地球科学学院, 长春 130061;
2. 吉林省地质调查院, 长春 130102
摘要: 为研究吉林中部地区早燕山期岩浆作用,并限制古太平洋板块向欧亚板块俯冲的起始时间,笔者对吉林中部江密峰花岗闪长岩进行了LA-ICP-MS锆石U-Pb年龄和岩石地球化学研究。花岗闪长岩锆石U-Pb测年结果为(179±1)Ma,为早侏罗世岩浆作用的产物。地球化学研究表明,岩石富SiO2、Na2O、K2O、Al2O3和TFe2O3,低MgO和CaO,为准铝质-高钾钙碱性,高分异I型花岗岩。岩石富集LREEs、LILEs(Rb、K)和HFSEs(Th),亏损HREEs、LILEs(Ba、Sr)和HFSEs(Nb、Ta、Ti、Zr),具有Eu负异常。岩石的形成经历了壳幔物质在源区混合形成原始岩浆,随后这一壳幔混源岩浆又经历高程度分异演化的二阶段成岩过程。结合相邻地区同时代火成岩的岩石组合特征与空间分布,笔者认为岩石形成于古太平洋板块向欧亚板块下俯冲引起的弧后伸展环境。
关键词 吉林中部   锆石U-Pb年代学   岩石地球化学   江密峰  
Zircon U-Pb chronology and petrogeochemistry of Jiangmifeng granodiorite in central Jilin Province
SUN Yong-gang1,2, LI Bi-le1, WANG Ju-sheng2, WANG Yong-sheng2, ZHANG Xu2, ZHAN Tian-yu2
1. College of Earth Sciences, Jilin University, Changchun 130061, China;
2. Geological Survey Institute of Jilin Province, Changchun 130102, China
Abstract: In order to study the Early Yanshanian magmatism in central Jilin Province, and delineate the starting time of the subduction of Palaeo-Pacific Plate beneath the Eurasian continent, the authors undertook LA-ICP-MS zircon U-Pb dating and geochemical analysis of Jiangmifeng granodiorite. It shows that the zircon U-Pb age of the granodiorite is 179±1 Ma, which is the product of magmatism in Early Jurassic. The geochemical anal-ysis results indicate that the Jiangmifeng granodiorite has high content of SiO2, Na2O, K2O, Al2O3 and TFe2O3, but low content of MgO and CaO, belonging to quasi-aluminous, high-potassium calc-alkaline, highly fractionated I-type granite. The granodiorite is enriched in LREEs, LILEs (Rb, K) and HFSEs (Th), depleted in HREEs, LILEs (Ba, Sr) and HFSEs (Nb, Ta, Ti, Zr), with negative Eu anomalies. The formation of the rocks experi-enced the mixing of crustal and mantle materials in the source area to form primary magma and subsequently the mixed magma underwent a two-stage diagenetic process of extensive magmatic differentiation and evolution. Accord-ing to the rock assemblage and spatial distribution of the contemporaneous igneous rocks in adjacent areas, the au -thors suggest that these rocks formed in the back-arc extensional setting which could be related to the subduction of Paleo-Pacific Plate beneath the Eurasian continent.
Keywords: central Jilin Province   zircon U-Pb chronology   petrogeochemistry   Jiangmifeng  
收稿日期 2018-06-03 修回日期 2019-10-21 网络版发布日期  
DOI: 10.3969/j.issn.1004-5589.2019.04.005
基金项目:

中国地质调查局项目(DD20160049)

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参考文献:
[1] Wu F Y, Sun D Y, Ge W C, et al. Geochronology of the Phanerozoic granitoids in northeastern China[J]. Jour-nal of Asian Earth Sciences, 2011, 41(1):1-30.
[2] Liu Y J, Li W M, Feng Z Q, et al. A review of the Pale-ozoic tectonics in the eastern part of central Asian orogen-ic belt[J]. Gondwana Research, 2017, 43:123-148.
[3] 彭玉鲸, 齐成栋, 周晓东, 等. 吉黑复合造山带古亚洲洋向滨太平洋构造域转换:时间标志与全球构造的联系[J]. 地质与资源, 2012, 21(3):261-265. PENG Yu-jing, QI Cheng-dong, ZHOU Xiao-dong, et al. Transition from Paleo-Asian Ocean domain to Circum-Pacific Ocean domain for the Ji-Hei composition orogenic belt:time mark and relationship to global tectonics[J]. Geology and Resources, 2012, 21(3):261-265.
[4] 周建波, 曹嘉麟, 曾维顺, 等. 吉林-黑龙江高压变质带的确定及意义[J]. 科学通报, 2013, 58(23):2266-2270. ZHOU Jian-bo, CAO Jia-lin, ZENG Wei-shun, et al. Confirming of the Jilin-Heilongjiang high-pressure meta-morphic belt and its tectonic implications[J]. Chinese Science Bulletin, 2013, 58(23):2266-2270.
[5] Yu J J, Wang F, Xu W L, et al. Early Jurassic mafic magmatism in the Lesser Xing'an-Zhangguangcai Range, NE China, and its tectonic implications:constraints from zircon U-Pb chronology and geochemistry[J]. Lithos, 2012, 142/143:256-266.
[6] Xu W L, Pei F P, Wang F, et al. Spatial-temporal rela-tionships of Mesozoic volcanic rocks in NE China:con-straints on tectonic overprinting and transformations be-tween multiple tectonic regimes[J]. Journal of Asian Earth Sciences, 2013, 74(18):167-193.
[7] 杨言辰, 韩世炯, 孙德有, 等. 小兴安岭-张广才岭成矿带斑岩型钼矿床岩石地球化学特征及其年代学研究[J]. 岩石学报, 2012, 28(2):379-390. YANG Yan-chen, HAN Shi-jiong, SUN De-you, et al. Geological and geochemical features and geochronology of porphyry molybdenum deposits in the Lesser Xing'an Range-Zhangguangcai Range metallogenic belt[J]. Ac-ta Petrologica Sinica, 2012, 28(2):379-390.
[8] 吉林省地质矿产局. 吉林省区域地质志[M]. 北京:地质出版社, 1988:1-280. Jilin Province Bureau of Geology Mineral Resources. Re-gional geology of Jilin Province[M]. Beijing:Geolog-ical Publishing House, 1988:1-280.
[9] Wu F Y, Zhao G C, Sun D Y, et al. The Hulan Group:its role in the evolution of the central Asian orogenic belt of NE China[J]. Journal of Asian Earth Sciences, 2007a, 30(3/4):542-556.
[10] 侯可军, 李延河, 田有荣. LA-MC-ICP-MS锆石微区原位U-Pb定年技术[J]. 矿床地质, 2009, 28(4):481-492. HOU Ke-jun, LI Yan-he, TIAN You-rong. In situ U-Pb zircon dating using Laser Ablation-Multi ion Counting-ICP-MS[J]. Mineral Deposits, 2009, 28(4):481-492.
[11] Ludwig K R. User's manual for isoplot 3.00:a geo-chronological toolkit for Microsoft Excel[M]. Berke-ley:Berkeley Geochronology Center (Special Publica-tion), 2003:1-70.
[12] Boynton W V. Geochemistry of the rare earth elements:meteorite studies[M]//Henderson P. Rare earth ele-ment geochemistry. New York:Elsevier Science, 1984:63-114.
[13] Sun S S, McDonough W F. Chemical and isotopic sys-tematics of oceanic basalts:implications for mantle com-position and processes[J]. Geological Society of Lon-don Special Publications, 1989, 42(1):313-345.
[14] Chappell B W, White A J R. I- and S-type granites in the Lachlan Fold Belt[J]. Earth and Environmental Science Transactions of the Royal Society of Edinburgh, 1992, 83(1/2):1-26.
[15] Wu F Y, Jahn B M, Wilde S A, et al. Highly fractiona-ted I-type granites in NE China (I):geochronology and petrogenesis[J]. Lithos, 2003a, 66(3/4):241-273.
[16] Wu F Y, Jahn B M, Wilde S A, et al. Highly fractiona-ted I-type granites in NE China (II):isotopic geochem-istry and implications for crustal growth in the Phanero-zoic[J]. Lithos, 2003b, 67(3/4):191-204.
[17] Chappell B W. Aluminium saturation in I- and S-type granites and the characterization of fractionated hap-logranites[J]. Lithos, 1999, 46(3):535-551.
[18] Watson E B, Harrison T M. Zircon saturation revisited:temperature and composition effects in a variety of crus-tal magma types[J]. Earth & Planetary Science Let-ters, 1983, 64(2):295-304.
[19] King P L, Chappell B W, Allen C M, et al. Are A-type granites the high-temperature felsic granites? evidence from fractionated granites of the Wangrah suite[J]. Australian Journal of Earth Sciences, 2001, 48(4):501-514.
[20] Wu F Y, Sun D Y, Li H M, et al. A-type granites in northeastern China:age and geochemical constraints on their petrogenesis[J]. Chemical Geology, 2002, 187:143-173.
[21] King P L, White A J R, Chappell B W. Characteriza-tion and origin of aluminous A-type granites of the Lachlan Fold belt, southeastern Australia[J]. Journal of Petrology, 1997, 38(3):371-391.
[22] 邱检生, 肖娥, 胡建, 等. 福建北东沿海高分异Ⅰ型花岗岩的成因:锆石U-Pb年代学、地球化学和Nd-Hf同位素制约[J]. 岩石学报, 2008, 24(11):2468-2484. QIU Jian-sheng, XIAO E, HU Jian, et al. Petrogenesis of highly fractionated I-type granites in the coastal area of northeastern Fujian Province:constraints from zircon U-Pb geochronology, geochemistry and Nd-Hf isotopes[J]. Acta Petrologica Sinica, 2008, 24(11):2468-2484.
[23] Richards J P. Magmatic to hydrothermal metal fluxes in convergent and collided margins[J]. Ore Geology Re-views, 2011, 40(1):1-26.
[24] Wang X S, Bi X W, Leng C B, et al. Geochronology and geochemistry of Late Cretaceous igneous intrusions and Mo-Cu-(W) mineralization in the southern Yidun Arc, SW China:implications for metallogenesis and ge-odynamic setting[J]. Ore Geology Reviews, 2014, 61:73-95.
[25] Champion D C, Chappell B W. Petrogenesis of felsic I-type granites:an example from northern Queensland[J]. Earth and Environmental Science Transactions of the Royal Society of Edinburgh, 1992, 83(1/2):115-126.
[26] 孙德有, 吴福元, 高山, 等. 吉林中部晚三叠世和早侏罗世两期铝质A型花岗岩的厘定及对吉黑东部构造格局的制约[J]. 地学前缘, 2005, 12(2):263-275. SUN De-you, WU Fu-yuan, GAO Shan, et al. Confir-mation of two episodes of A-type granite emplacement during Late Triassic and Early Jurassic in the central Ji-lin Province, and their constraints on the structural pat-tern of eastern Jilin-Heilongjiang area, China[J]. Earth Science Frontiers, 2005, 12(2):263-275.
[27] Wu F Y, Wilde S A, Sun D Y, et al. Geochronology and petrogenesis of post-orogenic Cu, Ni-bearing mafic-ultramafic intrutions in Jilin Province, NE China[J]. Journal of Asian Earth Sciences, 2004, 23:781-797.
[28] Wu F Y, Jahn B M, Wilde S A, et al. Phanerozoic continental crustal growth:U-Pb and Sr-Nd isotopic ev-idence from the granites in northeastern China[J]. Tectonophysics, 2000, 328(1/2):89-113.
[29] 孙德有, 吴福元, 林强, 等. 张广才岭燕山早期白石山岩体的成因与壳幔相互作用[J]. 岩石学报, 2001, 17(2):227-235. SUN De-you, WU Fu-yuan, LIN Qiang, et al. Petro-genesis and crust-mantle interaction of early Yanshanian Baishishan pluton in Zhangguangcai Range[J]. Acta Petrologica Sinica, 2001, 17(2):227-235.
[30] 唐杰, 许文良, 王枫, 等. 张广才岭帽儿山组双峰式火山岩成因:年代学与地球化学证据[J]. 世界地质, 2011, 30(4):508-520. TANG Jie, XU Wen-liang, WANG Feng, et al. Petro-genesis of bimodal volcanic rocks from Maoershan For-mation in Zhangguangcai Range:evidence from geochro-nology and geochemistry[J]. Global Geology, 2011, 30(4):508-520.
[31] 莫宣学, 罗照华, 肖庆辉, 等. 花岗岩类岩石中岩浆混合作用的识别与研究方法[M]. 北京:地质出版社, 2002:53-70. MO Xuan-xue, LUO Zhao-hua, XIAO Qing-hui, et al. Identification and research methods for the magma mix-ing and mingling of granitoid[M]. Beijing:Geological Publishing House, 2002:53-70.
[32] Raith J G. Petrogenesis of the concordia granite gneiss and its relation to W-Mo mineralization in western Namaqualand, South Africa[J]. Precambrian Re-search, 1995, 70(3/4):303-335.
[33] Watson E B, Harrison T M. Zircon saturation revisited:temperature and composition effects in a variety of crus-tal magma types[J]. Earth & Planetary Science Let-ters, 1983, 64(2):295-304.
[34] Wang F, Xu Y G, Xu W L, et al. Early Jurassic calc-alkaline magmatism in Northeast China:magmatic re-sponse to subduction of the Paleo-Pacific Plate beneath the Eurasian continent[J]. Journal of Asian Earth Sci-ences, 2017, 143:249-268.
[35] 孙德有, 吴福元, 张艳斌, 等. 西拉木伦河-长春-延吉板块缝合带的最后闭合时间:来自吉林大玉山花岗岩体的证据[J]. 吉林大学学报(地球科学版), 2004, 34(2):175-183. SUN De-you, WU Fu-yuan, ZHANG Yan-bin, et al. The final closing time of the west Lamulun River-Chang-chun-Yanji plate suture zone:evidence from the Dayus-han granitic pluton, Jilin Province[J]. Journal of Jilin University (Earth Science Edition), 2004, 34(2):175-183.
[36] Liu S, Hu R Z, Gao S, et al. Zircon U-Pb age and Sr-Nd-Hf isotope geochemistry of Permian granodiorite and associated gabbro in the Songliao block, NE China and implications for growth of juvenile crust[J]. Lithos, 2010, 114(3/4):423-436.
[37] Zhang X H, Zhang H F, Wilde S A, et al. Late Permi-an to Early Triassic mafic to felsic intrusive rocks from North Liaoning, North China:petrogenesis and implica-tions for Phanerozoic continental crustal growth[J]. Lithos, 2010, 117(1/4):283-306.
[38] Xu W L, Ji W Q, Pei F P, et al. Triassic volcanism in eastern Heilongjiang and Jilin provinces, NE China:chronology, geochemistry, and tectonic implications[J]. Journal of Asian Earth Sciences, 2009, 34(3):392-402.
[39] Wang F, Xu W L, Meng E, et al. Early Paleozoic amalgamation of the Songnen-Zhangguangcai Range and Jiamusi massifs in the eastern segment of the central Asian orogenic belt:geochronological and geochemical evidence from granitoids and rhyolites[J]. Journal of Asian Earth Sciences, 2012, 49:234-248.
[40] Gill J B. Orogenic andesites and plate tectonics[M]. New York:Springer Verlag, 1981:385.
[41] 刘金龙, 孙丰月, 林博磊, 等. 吉林延边地区棉田岩体锆石U-Pb年代学、地球化学及Hf同位素[J]. 地球科学, 2015, 40(1):49-60. LIU Jin-long, SUN Feng-yue, LIN Bo-lei, et al. Geo-chronology, geochemistry and zircon Hf isotope of Mian-tian granodiorite intrusion in Yanbian region, southern Jilin Province and its geological significance[J]. Earth Science, 2015, 40(1):49-60.
[42] 李碧乐, 孙永刚, 陈广俊, 等. 小兴安岭东安金矿区细粒正长花岗岩U-Pb年龄、岩石地球化学、Hf同位素组成及地质意义[J]. 地球科学, 2016, 41(1):1-16. LI Bi-le, SUN Yong-gang, CHEN Guang-jun, et al. Zircon U-Pb geochronology, geochemistry and Hf isotop-ic composition and its geological implication of the fine-grained syenogranite in the Dong'an goldfield from the Lesser Xing'an Mountains[J]. Earth Science, 2016, 41(1):1-16.
[43] 孙永刚, 王聚胜, 张辉, 等. 吉林中部西砬子沟花岗闪长岩锆石U-Pb年龄及岩石地球化学特征[J]. 世界地质, 2019, 38(1):68-79. SUN Yong-gang, WANG Ju-sheng, ZHANG Hui, et al. Zircon U-Pb age and petrogeochemistry of Xilazigou granodiorite in central Jilin Province[J]. Global Geol-ogy, 2019, 38(1):68-79.
[44] 许文良, 王枫, 裴福萍, 等. 中国东北中生代构造体制与区域成矿背景:来自中生代火山岩组合时空变化的制约[J]. 岩石学报, 2013, 29(2):339-353. XU Wen-liang, WANG Feng, PEI Fu-ping, et al. Mes-ozoic tectonic regimes and regional ore-forming back-ground in NE China:constraints from spatial and tempo-ral variations of Mesozoic volcanic rock associations[J]. Acta Petrologica Sinica, 2013, 29(2):339-353.
[45] Wu F Y, Yang J H, Lo C H, et al. Jiamusi massif in China:a Jurassic accretionary terrane in the western Pa-cific[J]. Island Arc, 2007b, 16:156-172.
[46] 赵英利, 刘永江, 李伟民, 等. 佳木斯地块南缘牡丹江地区高压变质作用:黑龙江杂岩的岩石学和地质年代学[J]. 地质通报, 2010, 29(2/3):243-253. ZHAO Ying-li, LIU Yong-jiang, LI Wei-min, et al. High-pressure metamorphism in the Mudanjiang area, southern Jiamusi massif:petrological and geochronologi-cal characteristics of the Heilongjiang complex, China[J]. Geological Bulletin of China, 2010, 29(2/3):243-253.
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