2022 Vol. 41, No. 6
Article Contents

SONG Mingchun, YANG Liqiang, FAN Hongrui, YU Xuefeng, DING Zhengjiang, ZHANG Yongwen, QIU Kunfeng, LI Jie, ZHANG Liang, WANG Bin, LI Shiyong. Current progress of metallogenic research and deep prospecting of gold deposits in the Jiaodong Peniusula during 10 years for Exploration Breakthrough Strategic Action[J]. Geological Bulletin of China, 2022, 41(6): 903-935. doi: 10.12097/j.issn.1671-2552.2022.06.001
Citation: SONG Mingchun, YANG Liqiang, FAN Hongrui, YU Xuefeng, DING Zhengjiang, ZHANG Yongwen, QIU Kunfeng, LI Jie, ZHANG Liang, WANG Bin, LI Shiyong. Current progress of metallogenic research and deep prospecting of gold deposits in the Jiaodong Peniusula during 10 years for Exploration Breakthrough Strategic Action[J]. Geological Bulletin of China, 2022, 41(6): 903-935. doi: 10.12097/j.issn.1671-2552.2022.06.001

Current progress of metallogenic research and deep prospecting of gold deposits in the Jiaodong Peniusula during 10 years for Exploration Breakthrough Strategic Action

  • Since the implementation of the Exploration Breakthrough Strategic Action organized by the former Ministry of Land and Resources in 2011, great achievements have been made in the deep prospecting of Jiaodong gold deposit, with the newly increased gold resources of about 2958 t.12 large gold deposits have been explored and evaluated, and 2 super-giant gold deposits have been found.The accumulated proven gold resources in Jiaodong Peninsula have reached more than 5000 tons, accounting for 1/3 of the whole country.These prospecting achievements are attributed to the deepening understanding of metallogenic theories such as metallogenic tectonic setting, metallogenic regularity and genesis of deposits and the continuous progress of exploration techniques and methods.The metallogenesis and related research of the Jiaodong gold deposit are the hotspots of domestic geological research.This article briefly summarizes the research progress in the recent 10 years in metallogenic background, deposit distribution, metallogenic epoch, geochemistry of ore deposit, metallogenic model and genesis, especially the original achievements in the research of deep metallogenic model and large-scale metallogenic mechanism.These results indicate that the Jiaodong gold deposit was formed in the magmatic activity background of adakite granite transformed into arc granite, the geochemical transformation of magmatic rocks and lithospheric mantle provides material sources for gold mineralization, the Early Cretaceous thermal doming-extension structures provided favorable conditions for large-scale gold mineralization, the change of fault dip angle controlled the fluid accumulation and the ore-rich pillars, the source of ore-forming materials and fluids have mantle-derived factors, and the Jiaodong type gold deposit is a new genetic type of gold deposit, which is different from the classical orogenic gold deposit and other known types.The exploration of the Jiaodong gold deposits comprehensively applied prospecting methods such as deep geophysical exploration, structural superimposed halo geochemical prospecting, three-dimensional geological modeling and deep drilling, etc., The ladder prospecting method for deep gold deposits, which takes the location of ore bearing structure as the target and frequency domain electromagnetic detection as the main technical means, plays an important role.This paper summarizes the important progress of deep exploration.The deep gold resources are concentrated in the depth of -1000 m to -2000 m, most of which are fracture zone altered rock type mineralization.Several shallow ore bodies in Sanshandao area and Jiaojia area are connected to the deep, forming a super-giant gold deposit with resources greater than 1000t.In recent years, the first offshore gold deposit in China has been discovered, and the pyrite carbonate vein type gold deposit has been defined as a new type in the east of Jiaodong.Finally, this paper briefly analyzes the unresolved problems in the deep exploration research of the Jiaodong gold deposit, and points out that the influence of Late Mesozoic structural system transformation on large-scale mineralization, the mechanism of fault-controlling ore, the source of ore-forming fluids and materials, the potential of gold resources and the fine and efficient prospecting techniques are the key research direction in the future.

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  • [1] 宋英昕, 宋明春, 丁正江, 等. 胶东金矿集区深部找矿重要进展及成矿特征[J]. 黄金科学技术, 2017, 25(3) : 4-18.

    Google Scholar

    [2] 于学峰, 宋明春, 李大鹏, 等. 山东金矿找矿突破进展与前景[J]. 地质学报, 2016, 90(10) : 2847-2862.

    Google Scholar

    [3] 陈玉民, 范宏瑞, 崔仑, 等. 胶西北大规模金成矿作用与成因模型[M]. 北京: 地质出版社, 2016: 1-336.

    Google Scholar

    [4] 宋明春, 张军进, 张丕建, 等. 胶东三山岛北部海域超大型金矿床的发现及其构造-岩浆背景[J]. 地质学报, 2015, 89(2) : 365-383.

    Google Scholar

    [5] 刘殿浩, 吕古贤, 张丕建, 等. 胶东三山岛断裂构造蚀变岩三维控矿规律研究与海域超大型金矿的发现[J]. 地学前缘, 2015, 22(4) : 162-172.

    Google Scholar

    [6] 张军进, 丁正江, 刘殿浩, 等. 山东莱州三山岛北部海域超大型金矿勘查实践与找矿成果[J]. 黄金科学技术, 2016, 24(1) : 1-10.

    Google Scholar

    [7] Deng J, Yang L Q, Groves D I, et al. An integrated mineral system model for the gold deposits of the giant Jiaodong Province, eastern China[J]. Earth Science Reviews, 2020, 208: 103274.

    Google Scholar

    [8] Li L, Santosh M, Li S R. The "Jiaodong type" gold deposits: Characteristics, origin and prospecting[J]. Ore Geology Reviews, 2015, 65: 589-611.

    Google Scholar

    [9] Song M C, Li S Z, Santosh M, et al. Types, characteristics and metallogenesis of gold deposits in the Jiaodong Peninsula, eastern North China Craton[J]. Ore Geology Reviews, 2015, 65: 612-625.

    Google Scholar

    [10] 杨立强, 邓军, 王中亮, 等. 胶东中生代金成矿系统[J]. 岩石学报, 2014, 30(9) : 2447-2467.

    Google Scholar

    [11] 朱日祥, 范宏瑞, 李建威, 等. 克拉通破坏型金矿床[J]. 中国科学(地球科学), 2015, 45: 1153-1168.

    Google Scholar

    [12] 范宏瑞, 冯凯, 李兴辉, 等. 胶东-朝鲜半岛中生代金成矿作用[J]. 岩石学报, 2016, 32(10) : 3225-3238.

    Google Scholar

    [13] 宋明春, 林少一, 杨立强, 等. 胶东金矿成矿模式[J]. 矿床地质, 2020, 39(2) : 215-236.

    Google Scholar

    [14] 宋明春, 宋英昕, 丁正江, 等. 胶东金矿床: 基本特征和主要争议[J]. 黄金科学技术, 2018, 26(4) : 406-422.

    Google Scholar

    [15] 宋明春, 宋英昕, 李杰, 等. 深部矿阶梯式找矿方法: 以胶东金矿集区深部找矿为例[J]. 中国地质, 2022, 49(1) : 1-15.

    Google Scholar

    [16] 林博磊, 李碧乐. 胶东玲珑花岗岩的地球化学、U-Pb年代学、Lu-Hf同位素及地质意义[J]. 成都理工大学学报(自然科学版), 2013, 40(2) : 147-160.

    Google Scholar

    [17] Yang K F, Fan H R, Santosh M. Reactivation of the Archean lower crust: Implications for zircon geochronology, elemental and Sr-Nd-Hf Isotopic geochemistry of late mesozoic granitoids from northwestern Jiaodong Terrane, the North China Craton[J]. Lithos, 2012, 146/147: 112-127.

    Google Scholar

    [18] 黄涛, 杨立强, 刘向东, 等. 胶北地体地壳演化: 玲珑黑云母花岗岩继承锆石U-Pb年龄、微量元素和Hf同位素证据[J]. 岩石学报, 2014, 30(9) : 2574-2594.

    Google Scholar

    [19] Wu M, Zhao G, Sun M, et al. A synthesis of geochemistry and Sm-Nd isotopes of Archean granitoid gneisses in the Jiaodong Terrane: Constraints on petrogenesis and tectonic evolution of the Eastern Block, North China Craton[J]. Precambrian Research, 2014, 255(1) : 885-899.

    Google Scholar

    [20] 王斌, 宋明春, 霍光, 等. 胶东晚中生代花岗岩的源区性质与构造环境演化及其对金成矿的启示[J]. 岩石矿物学杂志, 2021, 40(2) : 288-320.

    Google Scholar

    [21] Chai P, Zhang H R, Hou Z Q, et al. Geochronological framework of the Damoqujia gold deposit, Jiaodong Peninsula, China: Implications for the timing and geologic setting of gold mineralization[J]. Geological Journal, 2020, 55: 596-613.

    Google Scholar

    [22] Li Y J, Li S R, Santosh M, et al. Zircon geochronology, geochemistry and stable isotopes of the Wang'ershan gold deposit, Jiaodong Peninsula, China[J]. Journal of Asian Earth Sciences, 2015, 113: 695-710.

    Google Scholar

    [23] Chai P, Hou Z Q, Zhang H R, et al. Geology, Fluid inclusion, and H-O-S-Pb isotope constraints on the mineralization of the Xiejiagou gold deposit in the Jiaodong Peninsula[J]. Geofluids, 2019, (6) : 1-23.

    Google Scholar

    [24] Ma W D, Fan, H R, Liu X, et al. Geochronological framework of the Xiadian gold deposit in the Jiaodong province, China: Implications for the timing of gold mineralization[J]. Ore Geology Reviews, 2017, 86: 196-211.

    Google Scholar

    [25] Yang K F, Jiang P, Fan H R, et al. Tectonic transition from a compressional to extensional metallogenic environment at-120 Ma revealed in the Hushan gold deposit, Jiaodong, North China Craton[J]. Journal of Asian Earth Sciences, 2018, 160: 408-425.

    Google Scholar

    [26] 唐文龙, 付超, 邹键, 等. 胶东唐家沟金矿床独居石LA-ICP-MS U-Pb同位素年代学及其地质意义[J]. 地质学报, 2021, 95(3) : 809-821.

    Google Scholar

    [27] 薛建玲, 庞振山, 李胜荣, 等. 胶东邓格庄金矿床成因: 地质年代学和同位素体系制约[J]. 岩石学报, 2019, 35(5) : 1532-1550.

    Google Scholar

    [28] Wang Z L, Yang L Q, Deng J, et al. Gold-hosting high Ba-Sr granitoids in the Xincheng gold deposit, Jiaodong Peninsula, East China: Petrogenesis and tectonic setting[J]. Journal of Asian Earth Sciences, 2014, 95: 274-299.

    Google Scholar

    [29] 刘跃, 邓军, 王中亮, 等. 胶西北新城金矿床二长花岗岩岩石地球化学、锆石U-Pb年龄及Lu-Hf同位素组成[J]. 岩石学报, 2014, 30(9) : 2559-2573.

    Google Scholar

    [30] 王中亮, 赵荣新, 张庆, 等. 胶西北高Ba-Sr郭家岭型花岗岩岩浆混合成因: 岩石地球化学与Sr-Nd同位素约束[J]. 岩石学报, 2014, 30(9) : 2595-2608.

    Google Scholar

    [31] 王立功, 祝德成, 郭瑞朋, 等. 胶西北仓上、三山岛岩体二长花岗岩地球化学、锆石U-Pb年龄及Lu-Hf同位素研究[J]. 地质学报, 2018, 92(10) : 2081-2095.

    Google Scholar

    [32] 宋英昕, 于学峰, 李大鹏, 等. 胶东西北部北截岩体岩石成因: 锆石U-Pb年龄、岩石地球化学与Sr-Nd-Pb同位素制约[J]. 岩石学报, 2020, 36(5) : 1477-1500.

    Google Scholar

    [33] 罗贤冬, 杨晓勇, 段留安, 等. 胶北地块与金成矿有关的郭家岭岩体和上庄岩体年代学及地球化学研究[J]. 地质学报, 2014, 88(10) : 1874-1888.

    Google Scholar

    [34] Jiang P, Yang K F, Fan H R, et al. Titanite-scale insights into multi-stage magma mixing in Early Cretaceous of NW Jiaodong terrane, North China Craton[J]. Lithos, 2016, 258/259: 197-214.

    Google Scholar

    [35] 耿科, 王瑞江, 李洪奎, 等. 胶西北地区北截金矿闪长玢岩锆石SHRIMP年龄及其地质意义[J]. 地质学报, 2015, 89(6) : 1099-1107.

    Google Scholar

    [36] Deng J, Wang C M, Bagas L, et al. Cretaceous-Cenozoic tectonic history of the Jiaojia Fault and gold mineralization in the Jiaodong Peninsula, China: constraints from zircon U-Pb, illite K-Ar, and apatite fission track thermochronometry[J]. Mineral Deposita, 2015, 50: 987-1006.

    Google Scholar

    [37] Cai Y C, Fan H R, Santosh M, et al. Decratonic gold mineralization: Evidence from the Shangzhuang gold deposit, eastern North China Craton[J]. Gondwana Research, 2018, 54: 1-22.

    Google Scholar

    [38] Feng K, Fan H R, Groves D I, et al. Geochronological and sulfur isotopic evidence for the genesis of the post-magmatic, deeply sourced, and anomalously gold-rich Daliuhang orogenic deposit, Jiaodong, China[J]. Mineral Deposita, 2020, 55: 293-308.

    Google Scholar

    [39] 丁正江, 孙丰月, 刘福来, 等. 胶东伟德山地区铜钼多金属矿锆石U-Pb法测年及其地质意义[J]. 岩石学报, 2013, 29(2) : 607-618.

    Google Scholar

    [40] 宋明春, 宋英昕, 李杰, 等. 胶东与白垩纪花岗岩有关的金及有色金属矿床成矿系列[J]. 大地构造与成矿学, 2015, 39(5) : 823-843.

    Google Scholar

    [41] Song M C, Wang S S, Yang L X, et al. Metallogenic epoch and geological significance of nonferrous metallic and silver deposits in Jiaodong Peninsula, China[J]. Acta Geologica Sinica, 2017, 91(4) : 1305-1325.

    Google Scholar

    [42] Goss C S, Wilde S A, Wu F Y, et al. The age, isotopic signature and significance of the youngest Mesozoic granitoids in the Jiaodong Terrene, Shandong Province, North China Craton[J]. Lithos, 2010, 120(3/4) : 309-326.

    Google Scholar

    [43] 宋明春, 李杰, 李世勇, 等. 鲁东晚中生代热隆伸展构造及其动力学背景[J]. 吉林大学学报(地球科学版), 2018, 48(4) : 941-964.

    Google Scholar

    [44] 李增达, 于晓飞, 王全明, 等. 胶东三佛山花岗岩的成因: 成岩物理化学条件、锆石U-Pb年代学及Sr-Nd同位素约束[J]. 岩石学报, 2018, 34(2) : 447-468.

    Google Scholar

    [45] Huang X L, He P L, Wang X, et al. Lateral variation in oxygen fugacity and halogen contents in early Cretaceous magmas in Jiaodong area, East China: Implication for triggers of the destruction of the North ChinaCraton[J]. Lithos, 2016, 248/251: 478-492.

    Google Scholar

    [46] Tang H Y, Zheng J P, Yu C M, et al. Multistage crust-mantle interactions during the destruction of the North China Craton: Age and composition of the Early Cretaceous intrusions in the Jiaodong Peninsula[J]. Lithos, 2014, 190/191: 52-70.

    Google Scholar

    [47] Cheng S B, Liu Z J, Wang Q F, et al. Mineralization age and geodynamic background for the Shangjiazhuang Mo deposit in the Jiaodong gold province, China[J]. Ore Geology Reviews, 2017, 80: 876-890.

    Google Scholar

    [48] Song M C, Zhou J B, Song Y X, et al. Mesozoic Weideshan granitoid suite and its relationship to large-scale gold mineralization in the Jiaodong Peninsula, China[J]. Geological Journal, 2020, 55: 5703-5724.

    Google Scholar

    [49] 杨宽, 王建平, 林进展, 等. 胶东半岛艾山岩体岩石地球化学特征及成因意义[J]. 地质与勘探, 2012, 48(4) : 693-703.

    Google Scholar

    [50] 宋明春, 李杰, 周建波, 等. 胶东早白垩世高镁闪长岩类的发现及其构造背景[J]. 岩石学报, 2020, 36(1) : 279-296.

    Google Scholar

    [51] 董学, 李大鹏, 赵睿, 等. 胶东泽头岩体锆石U-Pb年代学和岩石成因: 对区域早白垩世晚期成岩成矿作用的指示[J]. 岩石学报, 2020, 36(5) : 1501-1514.

    Google Scholar

    [52] 王瑞良, 张招崇, 曾庆栋, 等. 胶东栖霞金矿集区早白垩世花岗岩形成时代及地质意义[J]. 大地构造与成矿学, 2018, 43(1) : 186-198.

    Google Scholar

    [53] Yan Q S, Metcalfe I, Shi X F, et al. Early Cretaceous granitic rocks from the southern Jiaodong Peninsula, eastern China: implications for lithospheric extension[J]. International Geology Review, 2019, 61(7) : 821-838.

    Google Scholar

    [54] 王世进, 万渝生, 王伟, 等. 山东崂山花岗岩形成时代——锆石SHRIMP U-Pb定年[J]. 山东国土资源, 2010, 26(10) : 1-6.

    Google Scholar

    [55] Ma L, Jiang S Y, Hofmann A, et al. Rapid lithospheric thinning of the North China Craton: New evidence from Cretaceous mafic dikes in the Jiaodong Peninsula[J]. Chemical Geology, 2016, 432: 1-15.

    Google Scholar

    [56] Liang, Y Y, Deng J, Liu X F, et al. Water contents of early Cretaceous mafic dikes in the Jiaodong Peninsula, eastern North China Craton: insights into an enriched lithospheric mantle source metasomatized by Paleo-Pacific Plate subduction-related fluids[J]. The Journal of Geology, 2019, 127(3) : 343-362.

    Google Scholar

    [57] Liang Y Y, Deng J, Liu X F, et al. Major and trace element, and Sr isotope compositions of clinopyroxene phenocrysts in mafic dykes on Jiaodong Peninsula, southeastern North China Craton: Insights into magma mixing and source metasomatism[J]. Lithos, 2018, 302/303: 480-495.

    Google Scholar

    [58] Liang Y Y, Liu X F, Wang Q F, et al. Late Mesozoic magmatism in the Jiaodong Peninsula, East China: Implications for crust-mantle interactions and lithospheric thinning of the eastern North China Craton[J]. Geoscience Frontiers, 2020, 11(3) : 895-914.

    Google Scholar

    [59] Ma L, Jiang S Y, Hou M L, et al. Geochemistry of Early Cretaceous calc-alkaline lamprophyres in the Jiaodong Peninsula: Implication for lithospheric evolution of the eastern North China Craton[J]. Gondwana Research, 2014, 25(2) : 859-872.

    Google Scholar

    [60] Ding D S, Chen L, Gong E P, et al. Zircon U-Pb age, geochemical, and Sr-Nd-O isotopic constraints on the origin of the youngest Mesozoic adakitic dikes in Jiaodong peninsula, North China Craton: implications for Early Cretaceous crustal evolution[J]. International Geology Review, 2020, 62(4) : 446-464.

    Google Scholar

    [61] Long Q, Hu R, Yang Y Z, et al. Geochemistry of Early Cretaceous intermediate to mafic dikes in the Jiaodong Peninsula: Constraints on mantle source composition beneath eastern China[J]. The Journal of Geology, 2017, 125(6) : 713-732.

    Google Scholar

    [62] Ma L, Jiang S Y, Hofmann A W, et al. Lithospheric and asthenospheric sources of lamprophyres in the Jiaodong Peninsula: A consequence of rapid lithospheric thinning beneath the North China Craton?[J]. Geochimicaet Cosmochimica Acta, 2014, 124: 250-271.

    Google Scholar

    [63] Li L, Li S R, Santosh M, et al. Dyke swarms and their role in the genesis of world-class gold deposits: Insights from the Jiaodong Peninsula, China[J]. Journal of Asian Earth Sciences, 2016, 130: 2-22.

    Google Scholar

    [64] Deng J, Yang L Q, Li H R, et al. Regional structural control on the distribution of world-class gold deposits: An overview from the Giant Jiaodong Gold Province, China[J]. Geological Journal, 2019, 54: 378-391.

    Google Scholar

    [65] Dai F Q, Zhao Z F, Zheng Y F, et al. The geochemical nature of mantle sources for two types of Cretaceous basaltic rocks from Luxi and Jiaodong in east-central China[J]. Lithos, 2019, 344/345: 409-424.

    Google Scholar

    [66] LiangY Y, Liu X F, Qin C, et al. Petrogenesis of Early Cretaceous mafic dikes in southeastern Jiaolai basin, Jiaodong Peninsula, China[J]. International Geology Review, 2017, 59(2) : 131-150.

    Google Scholar

    [67] Liu X F, Deng J, Liang Y Y, et al. Geochemical, mineralogical and chronological studies of mafic intermediate dykes in the Jiaodong Peninsula: implications for Late Mesozoic mantle source metasomatism and lithospheric thinning of the eastern North China Craton[J]. International Geology Review, 2020, 62(18) : 2239-2260.

    Google Scholar

    [68] Feng L Q, Gu X X, Zhang Y M, et al. Geology and geochronology of the Shijia gold deposit, Jiaodong Peninsula, China[J]. Ore Geology Reviews, 2020, 120: 103432.

    Google Scholar

    [69] Yuan Z Z, Li Z K, Zhao X F, et al. New constraints on the genesis of the giant Dayingezhuang gold(silver) deposit in the Jiaodong district, north China craton[J]. Ore Geology Reviews, 2019, 112: 103038.

    Google Scholar

    [70] 宋英昕, 宋明春, 孙伟清, 等. 胶东金矿成矿时代及区域地壳演化——基性脉岩的SHRIMP锆石U-Pb年龄及其地质意义[J]. 地质通报, 2018, 37(5) : 908-919.

    Google Scholar

    [71] Yang L Q, Deng J, Goldfarb R J, et al. 40Ar/39Ar geochronological constraints on the formation of the Dayingezhuang gold deposit: New implications for timing and duration of hydrothermal activity in the Jiaodong gold Province, China[J]. Gondwana Research, 2014, 25(4) : 1469-1483.

    Google Scholar

    [72] Yang L Q, Guo L N, Wang Z L, et al. Timing and mechanism of gold mineralization at the Wang'ershan gold deposit, Jiaodong Peninsula, eastern China[J]. Ore Geology Reviews, 2017, 88: 491-510.

    Google Scholar

    [73] Sai S X, Deng J, Qiu K F, et al. Textures of auriferous quartz-sulfide veins and 40Ar/39Ar geochronology of the Rushan gold deposit: Implications for processes of ore-fluid infiltration in the eastern Jiaodong gold Province, China[J]. Ore Geology Reviews, 2020, 117: 103254.

    Google Scholar

    [74] Zhang L, Weinberg R F, Yang L Q, et al. Mesozoic orogenic gold mineralization in the Jiaodong Peninsula, China: A focused event at 120±2 Ma during cooling of pregold granite intrusions[J]. Economic Geology, 2020, 115(2) : 415-441.

    Google Scholar

    [75] 薛建玲. 胶东牟乳成矿带金矿床成矿作用和深部远景研究[D]. 中国地质大学(北京) 博士学位论文, 2013.

    Google Scholar

    [76] Li J J, Zhang P P, Li G H, et al. Formation of the Liaoshang gold deposit, Jiaodong Peninsula, eastern China: Evidence from geochronology and geochemistry[J]. Geological Journal, 2020, 55: 5903-5913.

    Google Scholar

    [77] Tan J, Wei J H, Li Y J, et al. Origin and geodynamic significance of fault-hosted massive sulfide gold deposits from the Guocheng-Liaoshang metallogenic belt, eastern Jiaodong Peninsula: Rb-Sr dating, and H-O-S-Pb isotopic constraints[J]. Ore Geology Reviews, 2015, 65: 687-700.

    Google Scholar

    [78] Tian J P, Li J J, Zhang P P, et al. Formation of the Majiayao gold deposit, Jiaodong Peninsula, eastern China: Constraints from fluid inclusions, H-O-S-Pb isotopes, and pyrite Rb-Srage[J]. Geological Journal, 2020, 55: 5885-5902.

    Google Scholar

    [79] 蔡亚春, 范宏瑞, 胡芳芳, 等. 胶东胡八庄金矿成矿流体、稳定同位素及成矿时代研究[J]. 岩石学报, 2011, 27(5) : 1341-1351.

    Google Scholar

    [80] Deng J, Qiu K F, Wang Q F, et al. In situ dating of hydrothermal monazite and implications for the geodynamic controls on ore formation in the Jiaodong gold Province, easternChina[J]. Economic Geology, 2020, 115(3) : 671-685.

    Google Scholar

    [81] 李杰, 宋明春, 王美云, 等. 胶东尚家庄钼矿床Re-Os同位素年龄及其地质意义[J]. 中国地质, 2013, 40(5) : 1612-1621.

    Google Scholar

    [82] 李超, 裴浩翔, 王登红, 等. 山东孔辛头铜钼矿成矿时代及物质来源: 来自黄铜矿、辉钼矿Re-Os同位素证据[J]. 地质学报, 2016, 90(2) : 240-249

    Google Scholar

    [83] 柳振江, 王建平, 刘家军, 等. 胶东南宿花岗岩中辉钼矿的同位素年龄及其地质意义[J]. 矿床地质, 2010, S1: 483-484.

    Google Scholar

    [84] 朱保霖, 柳振江, 成少博, 等. 胶东院格庄岩体中辉钼矿Re-Os同位素测年及其地质意义[J]. 中国地质, 2016, 43(4) : 1353-1366.

    Google Scholar

    [85] 刘善宝, 王登红, 陈毓川, 等. 胶东半岛烟台地区邢家山钨钼矿床地质特征及其辉钼矿Re-Os同位素测年[J]. 地质通报, 2011, 30(8) : 1294-1302.

    Google Scholar

    [86] 丁正江, 孙丰月, 刘建辉, 等. 胶东邢家山钼钨矿床辉钼矿Re-Os同位素测年及其地质意义[J]. 岩石学报, 2012, 28(9) : 2721-2732.

    Google Scholar

    [87] 丁正江, 孙丰月, 李国华, 等. 胶东邢家山地区燕山早期钼钨成矿母岩锆石U-Pb年龄及其意义[J]. 中国地质, 2015, 42(2) : 556-569.

    Google Scholar

    [88] 丁正江, 孙丰月, 刘福来, 等. 胶东中生代动力学演化及主要金属矿床成矿系列[J]. 岩石学报, 2015, 31(10) : 3045-3080.

    Google Scholar

    [89] 吴福元, 葛文春, 孙德有, 等. 中国东部岩石圈减薄研究中的几个问题[J]. 地学前缘, 2003, 10(3) : 51-60.

    Google Scholar

    [90] Zhang J, Zhao Z F, Zheng Y F, et al. Postcollisional magmatism: Geochemical constraints on the petrogenesis of Mesozoic granitoids in the Sulu orogen, China[J]. Lithos, 2010, 119(3/4) : 512-536.

    Google Scholar

    [91] Deng J, Liu X F, Wang Q F, et al. Isotopic characterization and petrogenetic modeling of early Cretaceous mafic diking—Lithospheric extension in the North China craton, eastern Asia[J]. Geological Society America Bulletin, 2017, 129: 1379-1407.

    Google Scholar

    [92] 孟繁聪, 李天福, 薛怀民, 等. 胶莱盆地晚白垩世不同地幔源区的两种基性岩浆——诸城玄武岩和胶州玄武岩的对比[J]. 岩石学报, 2006, 22(6) : 1644-1656.

    Google Scholar

    [93] 宋明春, 伊丕厚, 徐军祥, 等. 胶西北金矿阶梯式成矿模式[J]. 中国科学: 地球科学, 2012, 42(7) : 992-1000.

    Google Scholar

    [94] 王偲瑞, 杨立强, 成浩, 等. 基底构造对矿床定位的控制机制: 焦家金矿带构造应力转移模拟[J]. 岩石学报, 2020, 36(5) : 1529-1546.

    Google Scholar

    [95] Mao X C, Ren J, Liu Z K, et al. Three-dimensional prospectivity modeling of the Jiaojia-type gold deposit, Jiaodong Peninsula, Eastern China: A case study of the Dayingezhuang deposit[J]. Journal of Geochemical Exploration, 2019, 203: 27-44.

    Google Scholar

    [96] Wang S R, Yang L Q, Wang J G, et al. Geostatistical determination of ore shoot plunge and structural control of the Sizhuang world-class epizonal orogenic gold deposit, Jiaodong Peninsula, China[J]. Minerals, 2019, 9(4) : 214.

    Google Scholar

    [97] Yang L, Zhao R, Wang Q F, et al. Fault geometry and fluid-rock reaction: Combined controls on mineralization in the Xinli gold deposit, Jiaodong Peninsula, China[J]. Journal of Structural Geology, 2018, 111: 14-26.

    Google Scholar

    [98] Zhang L, Groves D I, Yang L Q, et al. Relative roles of formation and preservation on gold endowment along the Sanshandao gold belt in the Jiaodong gold province, China: importance for province-to district-scale gold exploration[J]. Mineralium Deposita, 2020, 55: 325-344.

    Google Scholar

    [99] Xia Z M, Liu J L, Ni J L, et al. Structure, evolution and regional tectonic implications of the Queshan metamorphic core complex in eastern Jiaodong Peninsula of China[J]. Science China Earth Sciences, 2016, 59(5) : 997-1013.

    Google Scholar

    [100] Charles N, Augier R, Gumiaux C, et al. Timing, duration and role of magmatism in wide rift systems: Insights from the Jiaodong Peninsula(China, East Asia)[J]. Gondwana Research, 2013, 24: 412-428.

    Google Scholar

    [101] 杨喜安, 赵国春, 宋玉波, 等. 胶东牟平-乳山成矿带拆离断层控矿特征及找矿方向[J]. 大地构造与成矿学, 2011, 35(3) : 339-347.

    Google Scholar

    [102] Zhang L, Yang L Q, Wang Y, et al. Thermochronologic constrains on the processes of formation and exhumation of the Xinli orogenic gold deposit, Jiaodong Peninsula, eastern China[J]. Ore Geology Reviews, 2017, 81: 140-153.

    Google Scholar

    [103] 林少泽, 朱光, 严乐佳, 等. 胶东地区玲珑岩基隆升机制探讨[J]. 地质论评, 2013, 59(5) : 832-844.

    Google Scholar

    [104] 张丕建, 宋明春, 刘殿浩, 等. 胶东玲珑金矿田171号脉深部金矿床特征及构造控矿作用[J]. 矿床地质, 2015, 34(5) : 855-873.

    Google Scholar

    [105] 宋明春, 崔书学, 姜洪利. 山东胶西北矿集区和焦家金矿田成矿构造系统[J]. 地质通报, 2011, 30(4) : 573-578.

    Google Scholar

    [106] 杨立强, 邓军, 宋明春, 等. 巨型矿床形成与定位的构造控制: 胶东金矿集区剖析[J]. 大地构造与成矿学, 2019, 43(3) : 431-446.

    Google Scholar

    [107] Liu X, Fan H R, Evans N J, et al. Exhumation history of the Sanshandao Au deposit, Jiaodong: constraints from structural analysis and(U-Th) /He thermochronology[J]. Scientific Reports, 2017, 7(1) : 7787.

    Google Scholar

    [108] 李瑞红, 刘育, 李海林, 等. 胶东新城金矿床控矿构造变形环境: 显微构造和EBSD组构约束[J]. 岩石学报, 2014, 30(9) : 2546-2558.

    Google Scholar

    [109] 钱建平, 陈宏毅, 吴小雷, 等. 胶东望儿山金矿成矿构造分析和成矿预测[J]. 大地构造与成矿学, 2011, 35(2) : 221-231.

    Google Scholar

    [110] Wen B J, Fan H R, Hu F F, et al. Fluid evolution and ore genesis of the giant Sanshandao gold deposit, Jiaodong gold Province, China: Constrains from geology, fluid inclusions and H-O-S-He-Ar isotopic compositions[J]. Journal of Geochemical Exploration, 2016, 171: 96-112.

    Google Scholar

    [111] Liu J C, Wang J Y, Liu Y, et al. Ore genesis of the Xiadian gold deposit, Jiaodong Peninsula, East China: Information from fluid inclusions and mineralization[J]. Geological Journal, 2018, 53(S1) : 77-95.

    Google Scholar

    [112] Han Z Y, Yu X W, Li S J, et al. He-Ar isotopic tracing of pyrite from ore-forming fluids of the Sanshandao Au deposit, Jiaodong area[J]. Acta Geologica Sinica(English Edition), 2019, 93(6) : 1797-1807.

    Google Scholar

    [113] 姜晓辉, 范宏瑞, 胡芳芳, 等. 胶东三山岛金矿中深部成矿流体对比及矿床成因[J]. 岩石学报, 2011, 27(5) : 1327-1340.

    Google Scholar

    [114] Deng J, Liu X F, Wang Q F, et al. Origin of the Jiaodong-type Xinli gold deposit, Jiaodong Peninsula, China: Constraints from fluid inclusion and C-D-O-S-Sr isotope compositions[J]. Ore Geology Reviews, 2015, 65: 674-686.

    Google Scholar

    [115] 李杰, 宋明春, 梁金龙, 等. 焦家深部金矿床成矿流体来源: 来自黄铁矿微量元素及S-He-Ar同位素的约束[J]. 岩石学报, 2020, 36(1) : 297-313.

    Google Scholar

    [116] Yang L Q, Deng J, Guo R P, et al. World-class Xincheng gold deposit: An example from the giant Jiaodong gold province[J]. Geoscience Frontiers, 2016, 7: 419-430.

    Google Scholar

    [117] 张良, 刘跃, 李瑞红, 等. 胶东大尹格庄金矿床铅同位素地球化学[J]. 岩石学报, 2014, 30(9) : 2468-2480.

    Google Scholar

    [118] Chai P, Hou Z Q, Zhang Z Y. Geology, fluid inclusion and stable isotope constraints on the fluid evolution and resource potential of the Xiadian gold deposit, Jiaodong Peninsula[J]. Resource Geology, 2017, 67(3) : 341-359.

    Google Scholar

    [119] Guo L N, Deng J, Yang L Q, et al. Gold deposition and resource potential of the Linglong gold deposit, Jiaodong Peninsula: Geochemical comparison of ore fluids[J]. Ore Geology Reviews, 2020, 120: 103434.

    Google Scholar

    [120] Yang L Q, Deng J, Guo L N, et al. Origin and evolution of ore fluid, and gold-deposition processes at the giant Taishang gold deposit, Jiaodong Peninsula, eastern China[J]. Ore Geology Reviews, 2016, 72: 585-602.

    Google Scholar

    [121] Feng K, Fan H, Hu F, et al. Involvement of anomalously As-Au-rich fluids in the mineralization of the Heilan'gou gold deposit, Jiaodong, China: Evidence from trace element mapping and in-situ, sulfur isotope composition[J]. Journal of Asian Earth Sciences, 2018, 160: 304-321.

    Google Scholar

    [122] 薄军委, 丁正江, 宋明春, 等. 胶东辽上金矿床C、O、S、Pb同位素组成及矿床成因[J]. 岩石矿物学杂志, 2021, 40(2) : 321-336.

    Google Scholar

    [123] Tan J, Wei J H, He H Y, et al. Noble gases in pyrites from the Guocheng-Liaoshang gold belt in the Jiaodong province: Evidence for a mantle source of gold[J]. Chemical Geology, 2018, 480: 105-115.

    Google Scholar

    [124] Ma W D, Fan H R, Liu X, et al. Hydrothermal fluid evolution of the Jintingling gold deposit in the Jiaodong peninsula, China: Constraints from U-Pb age, CL imaging, fluid inclusion and stable isotope[J]. Journal of Asian Earth Sciences, 2018, 160: 287-303.

    Google Scholar

    [125] 刘玄, 范宏瑞, 胡芳芳, 等. 胶东大庄子金矿成矿流体及稳定同位素研究[J]. 矿床地质, 2011, 30: 675-689.

    Google Scholar

    [126] 郭林楠, 张潮, 宋宇宙, 等. 胶东望儿山金矿床氢-氧同位素地球化学[J]. 岩石学报, 2014, 30: 2481-2494.

    Google Scholar

    [127] Wen B J, Fan H R, Santosh M, et al. Genesis of two different types of gold mineralization in the Linglong gold field, China: Constrains from geology, fluid inclusions and stable isotope[J]. Ore Geology Reviews, 2015, 65: 643-658.

    Google Scholar

    [128] Wei Y J, Yang L Q, Feng J Q, et al. Ore-fluid evolution of the Sizhuang orogenic gold deposit, Jiaodong Peninsula, China[J]. Minerals, 2019, 9(3) : 190-209.

    Google Scholar

    [129] Goldfarb R J, Groves D I. Orogenic gold: common or evolving fluid and metal sources through time[J]. Lithos, 2015, 233: 2-26.

    Google Scholar

    [130] Hoefs J. Stable isotope geochemistry[J]. Chemical Geology, 2004, 211: 47-69.

    Google Scholar

    [131] Deng J, Wang Q F, Santosh M, et al. Remobilization of metasomatized mantle lithosphere: a new model for the Jiaodong gold Province, eastern China[J]. Mineralium Deposita, 2020, 55: 257-274.

    Google Scholar

    [132] Zhu Z Y, Jiang S Y, Mathur R, et al. Iron isotope behavior during fluid/rock interaction in K-feldspar alteration zone-a model for pyrite in gold deposits from the Jiaodong Peninsula, East China[J]. Geochimical et Cosmochimica Acta, 2018, 222: 94-116.

    Google Scholar

    [133] Zhang Y W, Hu F F, Fan H R, et al. Fluid evolution and gold precipitation in the Muping gold deposit(Jiaodong, China) : Insights from in-situ trace elements and sulfur isotope of sulfides[J]. Journal of Geochemical Exploration, 2020, 218: 106617.

    Google Scholar

    [134] Zartman R E, Doe B R. Plumbotectonics-the model[J]. Tectonophysics, 1981, 75(1/2) : 135-162.

    Google Scholar

    [135] Faure G. Principles of isotope geology[C]//Friedman, O'Neil J R. Compilation of stable isotope fractionation factors of geochemical interest[M]. US Geological Survey Professional Paper(USGPO), 1977: 1-440.

    Google Scholar

    [136] Mills S E, Tomkins A G, Weinberg R F, et al. Implications of pyrite geochemistry for gold mineralisation and remobilisation in the Jiaodong gold district, northeast China[J]. Ore Geology Reviews, 2015, 71: 150-168.

    Google Scholar

    [137] Wang Z C, Cheng H, Zong K Q, et al. Metasomatized lithospheric mantle for Mesozoic giant gold deposits in the North China craton. Geology, 2020, 48(2) : 169-173.

    Google Scholar

    [138] 李建威, 毕诗健, Vasconcelos P. 胶东苏鲁地体范家埠金矿成矿作用与矿床成因浅析: 兼与胶北地体金矿对比[J]. 高校地质学报, 2010, 16(2) : 125-142.

    Google Scholar

    [139] Wang Z L, Yang L Q, Guo L N, et al. Fluid immiscibility and gold deposition in the Xincheng deposit, Jiaodong Peninsula, China: A fluid inclusion study[J]. Ore Geology Reviews, 2015, 65: 701-717.

    Google Scholar

    [140] Chai P, Zhang Z Y, Hou Z Q. Geological and Fluid Inclusion Constraints on Gold Deposition Processes of the Dayingezhuang Gold Deposit, Jiaodong Peninsula, China[J]. Acta Geologica Sinica, 2019, 93(4) : 955-971.

    Google Scholar

    [141] 刘育, 杨立强, 郭林楠, 等. 胶东大尹格庄金矿床成矿流体组成[J]. 岩石学报, 2014, 30(9) : 2507-2517.

    Google Scholar

    [142] Hu F F, Fan H R, Jiang X H, et al. Fluid inclusions at different depths in the Sanshandao gold deposit, Jiaodong Peninsula, China[J]. Geofluids, 2013, 13(4) : 528-541.

    Google Scholar

    [143] Li X H, Fan H R, Yang K F, et al. Pyrite textures and compositions from the Zhuangzi Au deposit, southeastern North China Craton: implication for ore-forming processes[J]. Contrib. Miner. Petrol., 2018, 173: 73-93.

    Google Scholar

    [144] 薛建玲, 李胜荣, 庞振山, 等. 胶东邓格庄金矿成矿流体、成矿物质来源与矿床成因[J]. 岩石学报, 2018, 34(5) : 1453-1468.

    Google Scholar

    [145] 王中亮. 焦家金矿田成矿系统[D]. 中国地质大学(北京) 博士学位论文, 2012: 1-230.

    Google Scholar

    [146] 胡芳芳, 范宏瑞, 杨奎锋, 等. 胶东牟平邓格庄金矿床流体包裹体研究[J]. 岩石学报, 2007, 9: 2155-2164.

    Google Scholar

    [147] Li X C, Fan H R, Santosh M, et al. Hydrothermal alteration associated with Mesozoic granite-hosted gold mineralization at the Sanshandao deposit, Jiaodong Gold Province, China[J]. Ore Geology Reviews, 2013, 53: 403-421.

    Google Scholar

    [148] 陈炳翰, 王中亮, 李海林, 等. 胶东台上金矿床成矿流体演化: 载金黄铁矿稀土元素和微量元素组成约束[J]. 岩石学报, 2014, 30(9) : 2518-2532.

    Google Scholar

    [149] 郭林楠, 黄春梅, 张良, 等. 胶东罗山金矿床成矿流体来源: 蚀变岩型和石英脉型矿石载金黄铁矿稀土与微量元素特征约束[J]. 现代地质, 2019, 33(1) : 121-136.

    Google Scholar

    [150] 张潮, 刘育, 刘向东, 等. 胶西北新城金矿床硫同位素地球化学[J]. 岩石学报, 2014, 30(9) : 2495-2506.

    Google Scholar

    [151] Chai P, Zhang H R, Dong L L. Geology and ore-forming fluids of the Dayingezhuang gold deposit, Jiaodong Peninsula, eastern China: Implications for mineral exploration[J]. Journal of Geochemical Exploration, 2019, 204: 224-239.

    Google Scholar

    [152] Zhao R, Wang Q F, Liu X F, et al. Uplift history of the Jiaodong Peninsula, eastern North China Craton: implications for lithosphere thinning and gold mineralization[J]. Geological Magazine, 2017, 155(4) : 1-13.

    Google Scholar

    [153] Hu H L, Fan H R, Liu X, et al. Two-stage gold deposition in response to H2S loss from a single fluid in the Sizhuang deposit(Jiaodong, China)[J]. Ore Geology Reviews, 2020, 120: 103450.

    Google Scholar

    [154] Hu H L, Fan H R, Santosh M, et al. Ore-forming processes in the Wang'ershan gold deposit(Jiaodong, China) : Insight from microtexture, mineral chemistry and sulfur isotope compositions[J]. Ore Geology Reviews, 2020, 123(C) : 103600.

    Google Scholar

    [155] 赛盛勋, 邱昆峰. 胶东乳山金矿床成矿过程: 周期性压力波动诱发的流体不混溶[J]. 岩石学报, 2020, 36(5) : 1547-1566.

    Google Scholar

    [156] Fan H, Zhai M, Xie Y, et al. Ore-forming fluids associated with granite-hosted gold mineralization at the Sanshandao deposit, Jiaodong gold province, China[J]. Mineral Deposita, 2003, 38: 739-750.

    Google Scholar

    [157] Xu W G, Fan H R, Yang K F, et al. Exhaustive gold mineralizing processes of the Sanshandao gold deposit, Jiaodong Peninsula, eastern China: Displayed by hydrothermal alteration modeling[J]. Journal of Asian Earth Sciences, 2016, 129: 152-169.

    Google Scholar

    [158] 汪浩, 杨立强, 王偲瑞, 等. 胶西北寺庄金矿床红化蚀变过程及其对金成矿贡献[J]. 岩石学报, 2020, 36(5) : 1515-1528.

    Google Scholar

    [159] Chen B H, Deng J, Wei H T, et al. Trace element geochemistry in quartz in the Jinqingding gold deposit, Jiaodong Peninsula, China: implications for the gold precipitation mechanism[J]. Minerals, 2019, 9(5) : 326.

    Google Scholar

    [160] 沈保丰, 毛德宝, 李俊建. 中国绿岩带型金矿床类型和地质特征[J]. 前寒武纪研究进展, 1997, 20(4) : 1-12.

    Google Scholar

    [161] 杨敏之, 吕古贤. 胶东绿岩带金矿地质地球化学[M]. 北京: 地质出版社, 1996: 1-228.

    Google Scholar

    [162] 李士先, 刘长春, 安郁宏, 等. 胶东金矿地质[M]. 北京: 地质出版社, 2007: 1-423.

    Google Scholar

    [163] 陈衍景, Franco P, 赖勇, 等. 胶东矿集区大规模成矿时间和构造环境[J]. 岩石学报, 2004, 20(4) : 907-922.

    Google Scholar

    [164] Goldfarb R J, Groves D I, Gardoll S. Orogenic gold and geologic time: A global synthesis[J]. Ore Geology Reviews, 2001, 18(1) : 1-75.

    Google Scholar

    [165] Qiu Y M, Groves D I, McNaughton N G, et al. Nature, age and tectonic setting of granitoid-hosted, orogenic gold deposits of the Jiaodong Peninsula, eastern North China Craton, China[J]. Mineralium Deposita, 2002, 37(3/4) : 283-305.

    Google Scholar

    [166] Zhou T H, Lu G. Tectonics, granitoids and mesozoic gold deposits in East Shandong, China[J]. Ore Geology Reviews, 2000, 16(1/2) : 71-90.

    Google Scholar

    [167] 蒋少涌, 戴宝章, 姜耀辉, 等. 胶东和小秦岭: 两类不同构造环境中的造山型金矿省[J]. 岩石学报, 2009, 25(11) : 2727-2738.

    Google Scholar

    [168] 翟明国, 范宏瑞, 杨进辉, 等. 非造山带型金矿——胶东型金矿的陆内成矿作用[J]. 地学前缘, 2004, 11(1) : 85-98.

    Google Scholar

    [169] Goldfarb R J, Santosh M. The dilemma of the Jiaodong gold deposits: Are they unique?[J]. Geoscience Frontiers, 2014, 5(2) : 139-153.

    Google Scholar

    [170] Zhu R X, Fan H R, Li J W, et al. Decratonic gold deposits[J]. Science China: Earth Sciences, 2015, 58(9) : 1523-1537.

    Google Scholar

    [171] Groves D I, Santosh M. The giant Jiaodong gold province: the key to a unified model for orogenic gold deposits?[J]. Geoscience Frontiers, 2016, 7: 409-417.

    Google Scholar

    [172] Yang L Q, Deng J, Wang Z L, et al. Relationships between gold and pyrite at the Xincheng gold deposit, Jiaodong Peninsula, China: implications for gold source and deposition in a brittle epizonal environment[J]. Economic Geology, 2016, 111: 105-126.

    Google Scholar

    [173] Zhang L, Yang L Q, Weinberg R F, et al. Anatomy of a world-class epizonal orogenic-gold system: A holistic thermochronological analysis of the Xincheng gold deposit, Jiaodong Peninsula, eastern China[J]. Gondwana Research, 2019, 70: 50-70.

    Google Scholar

    [174] Cheng N N, Hou Q L, Shi M Y. New Insight into the Genetic Mechanism of Shear Zone Type Gold Deposits from Muping-Rushan Metallogenic Belt(Jiaodong Peninsula of Eastern China)[J]. Minerals, 2019, 9(12) : 775.

    Google Scholar

    [175] 宋明春, 李三忠, 伊丕厚, 等. 中国胶东焦家式金矿类型及其成矿理论[J]. 吉林大学学报(地球科学版), 2014, 44(1) : 87-104.

    Google Scholar

    [176] 田杰鹏, 田京祥, 郭瑞朋, 等. 胶东型金矿: 与壳源重熔层状花岗岩和壳幔混合花岗闪长岩有关的金矿[J]. 地质学报, 2016, 90(5) : 987-996.

    Google Scholar

    [177] 李洪奎, 李逸凡, 梁太涛, 等. 山东胶东型金矿的概念及其特征[J]. 黄金科学技术, 2017, 25(1) : 1-8.

    Google Scholar

    [178] 朱日祥, 孙卫东. 大地幔楔与克拉通破坏型金矿[J]. 中国科学: 地球科学, 2021, 51(9) : 1444-1456.

    Google Scholar

    [179] Niu S, Cheng G S, Zhang J Z, et al. Study on the metallogenetism of sub-mantle plume and mantle branches in the gold mineralization concentration area of northwest Jiaodong Peninsula[J]. Acta Geologica Sinca, 2014, 5(88) : 1409-1420.

    Google Scholar

    [180] Niu S Y, Chen C, Zhang J Z, et al. The thermal and dynamic process of core→mantle→crust and the metallogenesis of Guojiadian mantle branch in northwestern Jiaodong[J]. Minerals, 2019, 9(4) : 249.

    Google Scholar

    [181] De Boorder H. The Jiaodong gold district, northeastern China, in the context of the Late Paleozoic and Late Mesozoic large igneous provinces, orogeny and metallogeny in Eurasia[J]. Ore Geology Reviews, 2015, 65: 574-588.

    Google Scholar

    [182] Groves D I, Santosh M, Deng J, et al. A holistic model for the origin of orogenic gold deposits and its implications for exploration[J]. Mineral Deposita, 2020, 55: 275-292.

    Google Scholar

    [183] Yang Q Y, Santosh M. Early Cretaceous magma flare-up and its implications on gold mineralization in the Jiaodong Peninsula, China[J]. Ore Geology Reviews, 2015, 65: 626-642.

    Google Scholar

    [184] Sun W D, Li S, Yang X Y, et al. Large-scale gold mineralization in eastern China induced by an Early Cretaceous clockwise change in Pacific plate motions[J]. International Geology Review, 2013, 55(3) : 311-32.

    Google Scholar

    [185] 朱照先, 赵新福, 林祖苇, 等. 胶东金翅岭金矿床黄铁矿原位微量元素和硫同位素特征及对矿床成因的指示[J]. 地球科学, 2020, 45(3) : 945-959.

    Google Scholar

    [186] Sun H S, Li H, Liu L, et al. Exhumation history of the Jiaodong and its adjacent areas since the Late Cretaceous: Constraints from low temperature thermochronology[J]. Science China Earth Sciences, 2017, 60: 531-545.

    Google Scholar

    [187] Yang L Q, Deng J, Wang Z L, et al. Thermochronologic constraints on evolution of the Linglong Metamorphic Core Complex and implications for gold mineralization: A case study from the Xiadian gold deposit, Jiaodong Peninsula, eastern China[J]. Ore Geology Reviews, 2016, 72: 165-178.

    Google Scholar

    [188] 豆敬兆, 付顺, 张华锋, 等. 胶东郭家岭岩体固结冷却轨迹与隆升剥蚀[J]. 岩石学报, 2015, 31(8) : 2325-2336.

    Google Scholar

    [189] Wu L, Monié P, Wang F, et al. Multi-phase cooling of Early Cretaceous granites on the Jiaodong Peninsula, East China: Evidence from40Ar/39Ar and(U-Th) /He thermochronology[J]. Journal of Asian Earth Sciences, 2018, 160: 334-347.

    Google Scholar

    [190] 倪振平, 李秀章, 温桂军, 等. 山东胶西北地区金矿密集区资源潜力预测[J]. 吉林大学学报(地球科学版), 2013, 43(4) : 1223-1234.

    Google Scholar

    [191] 宋明春, 徐军祥. 大型-超大型矿床勘查方法与实践[M]. 北京: 地质出版社, 2018: 1-397.

    Google Scholar

    [192] 宋明春, 曹春国, 崔书学, 等. 一种深部金矿阶梯式找矿方法[P]. 2017, 中国专利: ZL 2015 1 0056575. X. 2017-11-10.

    Google Scholar

    [193] Song M C, Wan G P, Cao C G, et al. Geophysical-geological interpretation and deep-seated gold deposit prospecting in Sanshandong-Jiaojia area, eastern Shandong Province, China[J]. Acta Geologica Sinica, 2012, 86(3) : 640-652.

    Google Scholar

    [194] Yu X F, Shan W, Xiong Y X, et al. Structural framework and genetic analysis of gold concentration areas in the northwestern Jiaodong Peninsula, China: a new understanding based on high-resolution reflective seismic survey[J]. Acta Geologica Sinca, 2018, 92(5) : 1823-1840.

    Google Scholar

    [195] 李惠, 禹斌, 李德亮, 等. 山东三(山岛) -仓(上) 断裂带金矿床深部盲矿预测的构造叠加晕模型[J]. 矿床地质, 2010, 29(S1) : 713-714.

    Google Scholar

    [196] 马生明, 朱立新, 韩方法, 等. 胶西北焦家式金矿控矿构造蚀变带的地球化学标志[J]. 地学前缘, 2017, 24(2) : 64-72.

    Google Scholar

    [197] Wang J, Zhu L X, Ma S M, et al. Application of the multi-attribute anomaly model for prospecting potential at depth: A case study of the Haiyu Au deposit in the Jiaodong Gold Province, China[J]. Journal of Geochemical Exploration, 2019, 207: 106359.

    Google Scholar

    [198] 王学求, 张必敏, 于学峰, 等. 金矿立体地球化学探测模型与深部钻探验证[J]. 地球学报, 2020, 41(6) : 869-885.

    Google Scholar

    [199] 宋明春, 张照录, 刘晓, 等. 矿床三维地质建模[S]. 山东省市场监督管理局, 2021: 1-16.

    Google Scholar

    [200] 王巧云, 刘汉栋, 陈建平, 等. 山东焦家金成矿带三维地质建模及成矿预测[J]. 地质学刊, 2014, 38(3) : 412-420.

    Google Scholar

    [201] 陈进, 毛先成, 刘占坤, 等. 基于随机森林算法的大尹格庄金矿床三维成矿预测[J]. 大地构造与成矿学, 2020, 44(2) : 231-241.

    Google Scholar

    [202] 毛先成, 王迷军, 刘占坤, 等. 基于勘查数据的胶东大尹格庄金矿床控矿地质因素定量分析[J]. 地学前缘, 2019, 26(4) : 84-93.

    Google Scholar

    [203] 于学峰, 杨德平, 李大鹏, 等. 胶东焦家金矿带3000m深部成矿特征及其地质意义[J]. 岩石学报, 2019, 35(9) : 2893-2910.

    Google Scholar

    [204] 宋明春, 丁正江, 张英传, 等. 一种海域金矿勘查钻探方法[P]. 2017, 中国专利: ZL 2015 1 0805542.0.

    Google Scholar

    [205] 陈师逊, 杨芳, 张军进. 三山岛北部海域金矿海上钻探施工关键技术[J]. 黄金科学技术, 2016, 24(1) : 17-22.

    Google Scholar

    [206] 田振环. 海域金矿找矿方法研究——以山东省莱州市三山岛北部海域金矿为例[J]. 地质学报, 2019, 93(S1) : 19-28.

    Google Scholar

    [207] 宋明春, 宋英昕, 丁正江, 等. 胶东焦家和三山岛巨型金矿床的发现及有关问题讨论[J]. 大地构造与成矿学, 2019, 43(1) : 92-110.

    Google Scholar

    [208] 刘殿浩, 张丕建, 丁正江, 等. 三山岛北部海域金矿勘查工作思路与实践[J]. 山东国土资源, 2015, 31(2) : 1-6, 11.

    Google Scholar

    [209] 李国华, 丁正江, 宋明春, 等. 胶东新类型金矿——辽上黄铁矿碳酸盐脉型金矿[J]. 地球学报, 2017, 38(3) 423-429.

    Google Scholar

    [210] 纪攀, 丁正江, 李国华, 等. 胶东辽上特大型金矿床地质特征[J]. 山东国土资源, 2016, 32(6) : 9-13.

    Google Scholar

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