Mineralization Process of Permian Karst Bauxite in Western Guangxi
-
摘要: 桂西二叠纪喀斯特型铝土矿是第四纪萨伦托型铝土矿的矿源层,但是其具体成矿地质过程并不清楚.在矿带东部平果矿田1∶5万区域地质调查基础上,针对性地对二叠纪铝土矿床进行了合山组含铝岩系基本层序、铝土矿成矿物质来源、古喀斯特地貌对铝土矿的控制作用及含铝矿物生成顺序的研究,并阐述了该类型铝土矿从源岩风化到搬运沉积的具体成矿过程.综合前人研究成果,提出桂西二叠纪喀斯特型铝土矿的四阶段成矿模式,分别为孤立台地隆升接受火山喷发沉积物阶段、原地深度风化阶段、积水潜育化阶段和埋藏成矿阶段.Abstract: The Permian karst bauxites in western Guangxi are the source material of the Quaternary Salento bauxites,but their specific mineralization process is still unclear. Based on the 1:50 000 regional geological survey,this paper reveals concrete mineralization process of Permian bauxite from source rock weathering to transport deposition in western Guangxi by focusing on basic sequence of bauxitic series in Heshan Formation,source materials of bauxitic ore,paleokarst control of bauxite mineralization and generation sequence of aluminous minerals of the Permian bauxite deposits and occurrences. Integrating previous studies,it is proposed that geological process of Permian karst bauxite in western Guangxi includes four mineralization stages,namely uplifting of isolated platform and receiving volcanic materials,in-situ deep weathering,waterlogging gleization and buried mineralization.
-
Key words:
- bauxite /
- mineralization process /
- karst type /
- Permian /
- western Guangxi /
- ore deposit
-
图 1 桂西铝土矿矿带地质矿产简图(据Deng et al., 2010)
1.地质界线;2.辉绿岩;3.花岗岩;4.大中型铝土矿;5.小型铝土矿;6.研究区. 寒武系;D-C.泥盆系-石炭系;P.二叠系;T.三叠系
Fig. 1. Simpilified geological and mineralization map of metallogenic bauxite belt in western Guangxi(after Deng et al., 2010)
图 3 平果地区合山组含铝岩系野外露头、岩石和镜下照片
a. 含铝岩系野外露头(太平矿床TC02),A. 块状铁铝质岩,B. 层状铝质岩,C. 碳质泥岩;b. 铝质岩镜下结构(布绒矿床TC08);c. 铁铝质岩中黄铁矿囊(布绒矿床TC12);d. 铝质岩中正粒序层理(太平矿床TC02),A. 砂屑层,B. 胶体层;e. 碳质泥岩中植物根茎化石(布绒矿床TC11);f. 碳质泥岩层中碳质泥岩(A)、铁铝质粘土岩(B)韵律(太平矿床TC01)
Fig. 3. Photos of field outcrops, rocks and microscope textures of aluminiferous series in Heshan Formation, Pingguo area
图 2 平果地区铝土矿示意图(a)和太平、布绒及都结矿(化)体地质矿产图(b)
1.地质界线;2.断裂及编号;3.铝土矿(化)体及编号;4.探槽位置及编号;5.铝土矿(化)体Al2O3含量(%)、Al/Si重量比及厚度(m);6.铁矿化体Fe2O3含量(%)及厚度(m);7.地层产状(o). C2P1m.马平组;P2m.茅口组;P2q.栖霞组;P3hfb.合山组铝土矿层;T1m.马脚岭组. Prls.二叠纪礁灰岩;Qhg.桂平组;P3h上、下不整合关系在图中未标出
Fig. 2. Schematic map of bauxite in Pingguo area (a) and geological and mineral deposits or occurences in Taiping, Burong and Dujie (b)
图 7 平果地区茅口组(P2m)顶部古喀斯特地貌单元及上覆地层单元
a.石芽坡地及上覆铁铝质岩(太平矿床TC01);b. 石芽坡地及上覆铁铝质岩(太平矿床TC02);c.峰体及上覆P3h燧石条带灰岩,缺失含铝岩系(都结矿化带D3920);d.岩溶漏斗边部及上覆T1m泥质条带灰岩,缺失P3h全部(都结矿化带TC15);e.岩溶坡地铝土矿,缺失P3h燧石条带灰岩(都结矿化带D4335);f.岩溶洼地中硅质岩(都结矿化带D4335西)
Fig. 7. Paleokarst geomorphic unit and overlying stratigraphic unit at the top of Maokou Formation (P2m) in Pingguo area
表 1 平果地区合山组含铝岩系碎屑锆石LA-ICP-MS U-Pb年龄
Table 1. LA-ICP-MS U-Pb concordia ages of detrital zircon from the aluminiferous series of Heshan Formation, Pingguo area
序号 样品号 采样位置 岩性 锆石数量 谐和年龄(Ma) 1 TC02-NL1 太平矿床 铁铝质岩 21 259.1±1.0 2 TC07-NL1 布绒矿床 铝质岩 21 260.2±0.6 3 TC06-NL1 都结矿点 粘土铝质岩 21 259.9±0.6 4 D5840-NL1 果化矿床 铁铝质岩 25 259.3±0.6 表 2 平果地区二叠纪喀斯特型铝土矿体局部矿化特征
Table 2. Local mineralization characteristics of Permian karst bauxite ore body in Pingguo area
序号 矿床(化层) 控制工程或点位 古喀斯特地貌单元 含铝岩系岩性(碳质泥岩除外) 含铝岩系厚度(m)(碳质泥岩除外) 矿(化)体厚度(m)(Al2O3含量(%)及Al/Si重量比) 矿物组合 1 太平矿床 TC03 石芽坡地上部 赤铁矿帽 2.0 0(0/0) 未检测 2 太平矿床 TC01 石芽坡地下部 铝质岩 5.6 3.5(52.56/4.1) 未检测 3 太平矿床 TC02 石芽坡地下部 铝质岩、铁铝质岩 5.1 3.9(55.79/5.1) 主要Dsp、Kln、Chl,少量Ant、Gt、Py 4 太平矿床 TC09 石芽缓坡 赤铁矿帽、铝质岩 2.9 1.0(64.23/5.1) 未检测 5 布绒矿床 TC13 岩溶坡地 铁铝质岩、铁质粘土岩 8.7 5.0(43.59/2.0) 主要Kln,次要Dsp、Chl,少量Bhm、Ant、Gt 6 布绒矿床 TC04 石芽坡地底部 铁铝质岩、铝质岩 10.9 7.5(48.07/3.9) 主要Dsp、Ill,次要Kln、Chl,少量Ant、Gt、Py 7 布绒矿床 TC05 石芽坡地底部 铁铝质岩、铝质岩 8.8 7.1(56.37/6.6) 未检测 8 布绒矿床 TC08 石芽缓坡 铁铝质岩、铝质岩 1.1 1.1(69.52/12.7) 主要Dsp,次要Kln、Ill、Chl,少量Ant、Gt 9 布绒矿床 TC12 石芽缓坡下部 铝质岩、铁铝质岩 1.5 1.5(52.61/2.4) 主要Dsp、Kln,次要Bhm,少量Chl、Ant、Gt、Qtz、Py 10 布绒矿床 TC07 石芽缓坡上部 铝质岩 2.1 2.3(67.32/10.2) 未检测 11 布绒矿床 TC11 石芽缓坡底部 铝质岩 4.4 4.0(69.63/25.5) 主要Dsp,次要Kln、Ill,少量Chl、Ant、Gt 12 都结矿化带 TC15 岩溶漏斗 粘土岩 4.4 4.4(36.37/0.8) 主要Kln,次要Chl,少量Dsp、Ant、Gt 13 都结矿化带 TC06 岩溶坡地 铁铝质粘土岩、铝质粘土岩 25.1 15.1(46.31/1.9) 主要Kln,次要Dsp、Bhm,少量Chl、Ant、Gt、Qtz、Py 14 都结矿化带 D3920 岩溶洼地 硅质岩、粘土岩 3.0 0.9(未检测) 主要Kln,少量Chl、Dsp、Ant、Gt 注:矿物组合根据XRD和EPMA两种方法测定. Dsp.硬水铝石;Bhm.软水铝石;Chl.绿泥石;Kln.高岭石;Ill.伊利石;Ant.锐钛矿;Gt.针铁矿;Qtz.石英;Py.黄铁矿. -
[1] Cao, X. Y., 1982. Discusses of Type and the Origin of Guangxi Bauxite. Guangxi Geology Science and Technology, 1: 38-46 (in Chinese). [2] Chen, Q.Y., Lan, W.B., 1991. A Study on the Genesis of the Permian Bauxite Deposit at Pingguo, Guangxi. Geology of Guangxi, 4(4): 43-49 (in Chinese with English abstract). http://www.cqvip.com/QK/90174A/199104/1005306644.html [3] Dai, T.G., Long, Y.Z., Zhang, Q.Z., et al., 2003. REE Geochemistry of Some Bauxite Deposits in the Western Guangxi District. Geology and Prospecting, 39(4): 1-5 (in Chinese with English abstract). http://www.cnki.com.cn/Article/CJFDTotal-DZKT200304001.htm [4] Deng, J., Wang, Q. F., Yang, S. J., et al., 2010. Genetic Relationship between the Emeishan Plume and the Bauxite Deposits in Western Guangxi, China: Constraints from U-Pb and Lu-Hf Isotopes of the Detrital Zircons in Bauxite Ores. Journal of Asian Earth Sciences, 37(5-6): 412-424. https://doi.org/10.1016/j.jseaes.2009.10.005 [5] Du, Y.S., Huang, H.W., Huang, Z.Q., et al., 2009. Basin Translation from Late Palaeozoic to Triassic of Youjiang Basin and Its Tectonic Significance. Geological Science and Technology Information, 28(6): 10-15 (in Chinese with English abstract). http://www.en.cnki.com.cn/Article_en/CJFDTOTAL-DZKQ200906002.htm [6] Du, Y.S., Huang, H., Yang, J.H., et al., 2013. The Basin Translation from Late Paleozoic to Triassic of the Youjiang Basin and Its Tectonic Signification. Geological Review, 59(1): 1-11 (in Chinese with English abstract). http://www.cnki.com.cn/Article/CJFDTotal-DZLP201301002.htm [7] Gong, Z. T., Zhang, X. P., Wei, Q. F., 1990. Formation, Characteristics and Yield Increasing Capacity of Potential Paddy Soils in China. Scientia Agricultura Sinica, 23(1): 45-53 (in Chinese). [8] He, B., Xu, Y. G., Guan, J. P., et al., 2010. Paleokarst on the Top of the Maokou Formation: Further Evidence for Domal Crustal Uplift Prior to the Emeishan Flood Volcanism. Lithos, 119(1-2): 1-9. https://doi.org/10.1016/j.lithos.2010.07.019 [9] Hou, Y. L., Zhong, Y. T., Xu, Y. G., et al., 2017. The Provenance of Late Permian Karstic Bauxite Deposits in SW China, Constrained by the Geochemistry of Interbedded Clastic Rocks, and U-Pb-Hf-O Isotopes of Detrital Zircons. Lithos, 278-281: 240-254. https://doi.org/10.1016/j.lithos.2017.01.013 [10] Li, Q. J., Hou, Z. H., Wu, C. L., 1981. Genesis of Primary Bauxite Deposits in Guangxi. Light Metal, (10): 1-3, 6 (in Chinese). [11] Liao, S.F., 1986. The Genesis of Bauxite and the Sedimentary Process of Its Ore Deposit in China. Acta Sedimentologica Sinica, 4(1): 1-8 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-CJXB198601000.htm [12] Liao, S.F., 1991. A Discussion on Origin of Palaeozoic Bauxite Ore Textures and Structures and Bauxite Deposit Names in China. Guizhou Geology, 8(2): 109-118 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-GZDZ199102002.htm [13] Liu, X. F., Wang, Q. F., Deng, J., et al., 2010. Mineralogical and Geochemical Investigations of the Dajia Salento-Type Bauxite Deposits, Western Guangxi, China. Journal of Geochemical Exploration, 105(3): 137-152. https://doi.org/10.1016/j.gexplo.2010.04.012 [14] Liu, X.F., Wang, Q.F., Li, Z.M., et al., 2012. Mineral Genesis and Evolutionary Sequence of the Bauxite Deposits in Henan Province. Geology and Exploration, 48(3): 449-459 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-DZKT201203004.htm [15] Liu, X. F., Wang, Q. F., Zhang, Q. Z., et al., 2017. Genesis of the Permian Karstic Pingguo Bauxite Deposit, Western Guangxi, China. Mineralium Deposita, 52(7): 1031-1048. https://doi.org/10.1007/s00126-017-0723-y [16] Qiao, L., 2016. Tectonic Evolution and Bauxite Metallogenesis in the Youjiang Basin and Adjacent China (Dissertation). China University of Geosciences, Beijing (in Chinese with English abstract). [17] Qin, J.H., Wu, Y.L., Yan, Y.J., et al., 1996. Hercynian-Indosinian Sedimentary-Tectonic Evolution of the Nanpanjiang Basin. Acta Geologica Sinica, 70(2): 99-107 (in Chinese with English abstract). http://kns.cnki.net/KCMS/detail/detail.aspx?dbcode=CJFD&filename=DZXW199604000 [18] Shellnutt, J. G., Jahn, B. M., 2011. Origin of Late Permian Emeishan Basaltic Rocks from the Panxi Region (SW China): Implications for the Ti-Classification and Spatial-Compositional Distribution of the Emeishan Flood Basalts. Journal of Volcanology and Geothermal Research, 199(1-2): 85-95. https://doi.org/10.1016/j.jvolgeores.2010.10.009 [19] Sidibe, M., Yalcin, M. G., 2019. Petrography, Mineralogy, Geochemistry and Genesis of the Balaya Bauxite Deposits in Kindia Region, Maritime Guinea, West Africa. Journal of African Earth Sciences, 149: 348-366. https://doi.org/10.1016/j.jafrearsci.2018.08.017 [20] Su, Y., 1985. A Preliminary Study on the Sedimentary Environment and Genesis of Pingguo Bauxite Deposit, Guangxi. Journal of Guilin Institute of Technology, 5(4): 315-321 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-GLGX198504004.htm [21] Temur, S., Kansun, G., 2006. Geology and Petrography of the Masatdagi Diasporic Bauxites, Alanya, Antalya, Turkey. Journal of Asian Earth Sciences, 27(4): 512-522. https://doi.org/10.1016/j.jseaes.2005.07.001 [22] Wang, R.H., Li, M., Meng, Y.J., 2010. Metallogenic Characteristics and Resource Potential Estimation of Accumulative Type Bauxite in Guangxi, China. Geological Bulletin of China, 29(10): 1526-1532 (in Chinese with English abstract). http://www.researchgate.net/publication/298469319_Metallogenic_characteristics_and_resource_potential_estimation_of_accumulative_type_bauxite_in_Guangxi_China [23] Wang, Q. F., Deng, J., Liu, X. F., et al., 2010. Discovery of the REE Minerals and Its Geological Significance in the Quyang Bauxite Deposit, West Guangxi, China. Journal of Asian Earth Sciences, 39(6): 701-712. https://doi.org/10.1016/j.jseaes.2010.05.005 [24] Wang, Q.F., Deng, J., Liu, X.F., et al., 2012. Review on Research of Bauxite Geology and Genesis in China. Geology and Exploration, 48(3): 430-448 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-DZKT201203003.htm [25] Xu, Y. G., Chung, S. L., Shao, H., et al., 2010. Silicic Magmas from the Emeishan Large Igneous Province, Southwest China: Petrogenesis and Their Link with the End-Guadalupian Biological Crisis. Lithos, 119(1-2): 47-60. https://doi.org/10.1016/j.lithos.2010.04.013 [26] Yang, S. J., Wang, Q. F., Zhang, Q. Z., et al., 2018. Terrestrial Deposition Processes of Quaternary Gibbsite Nodules in the Yongjiang Basin, Southeastern Margin of Tibet, and Implication for the Genesis of Ancient Karst Bauxite. Sedimentary Geology, 373: 292-306. https://doi.org/10.1016/j.sedgeo.2018.06.010 [27] Yu, W. C., Algeo, T. J., Du, Y. S., et al., 2016. Mixed Volcanogenic-Lithogenic Sources for Permian Bauxite Deposits in Southwestern Youjiang Basin, South China, and Their Metallogenic Significance. Sedimentary Geology, 341: 276-288. https://doi.org/10.1016/j.sedgeo.2016.04.016 [28] Yu, W. C., Wang, R. H., Zhang, Q. L., et al., 2014. Mineralogical and Geochemical Evolution of the Fusui Bauxite Deposit in Guangxi, South China: From the Original Permian Orebody to a Quarternary Salento-Type Deposit. Journal of Geochemical Exploration, 146: 75-88. https://doi.org/10.1016/j.gexplo.2014.07.020 [29] Zhang, Q.Z., 2011. Metallogenic Model and Exploration Techniques of the Bauxite, Western Guangxi, China (Dissertation). China University of Geosciences, Beijing (in Chinese with English abstract). [30] Zhong, H., Campbell, I. H., Zhu, W. G., et al., 2011. Timing and Source Constraints on the Relationship between Mafic and Felsic Intrusions in the Emeishan Large Igneous Province. Geochimica et Cosmochimica Acta, 75(5): 1374-1395. https://doi.org/10.1016/j.gca.2010.12.016 [31] Zou, W.L., 1998. Features and Genesis of Ooides in Carboniferous Bauxite in Shanxi Province. World Geology, 17(4): 18-21 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-SJDZ804.003.htm [32] 曹信禹, 1982. 试论广西铝土矿的类型和成因. 广西地质科技, 1: 38-46. [33] 陈其英, 兰文波, 1991. 二叠纪平果铝土矿成矿物源问题. 广西地质, 4(4): 43-49. https://www.cnki.com.cn/Article/CJFDTOTAL-GXDZ199104005.htm [34] 戴塔根, 龙永珍, 张起钻, 等, 2003. 桂西某些铝土矿床稀土元素地球化学研究. 地质与勘探, 39(4): 1-5. https://www.cnki.com.cn/Article/CJFDTOTAL-DZKT200304001.htm [35] 杜远生, 黄宏伟, 黄志强, 等, 2009. 右江盆地晚古生代-三叠纪盆地转换及其构造意义. 地质科技情报, 28(6): 10-15. doi: 10.3969/j.issn.1000-7849.2009.06.002 [36] 杜远生, 黄虎, 杨江海, 等, 2013. 晚古生代-中三叠世右江盆地的格局和转换. 地质论评, 59(1): 1-11. doi: 10.3969/j.issn.0371-5736.2013.01.001 [37] 龚子同, 张效朴, 韦启璠, 1990. 我国潜育性水稻土的形成、特性及增产潜力. 中国农业科学, 23(1): 45-53. doi: 10.3321/j.issn:0578-1752.1990.01.007 [38] 李启津, 侯正洪, 吴成柳, 1981. 广西原生铝土矿矿床成因探讨. 轻金属, (10): 1-3, 6. https://www.cnki.com.cn/Article/CJFDTOTAL-QJSS198110000.htm [39] 廖士范, 1986. 我国铝土矿成因及矿层沉积过程. 沉积学报, 4(1): 1-8. https://www.cnki.com.cn/Article/CJFDTOTAL-CJXB198601000.htm [40] 廖士范, 1991. 我国古生代铝土矿矿石结构构造成因命名及矿床命名问题. 贵州地质, 8(2): 109-118. https://www.cnki.com.cn/Article/CJFDTOTAL-GZDZ199102002.htm [41] 刘学飞, 王庆飞, 李中明, 等, 2012. 河南铝土矿矿物成因及其演化序列. 地质与勘探, 48(3): 449-459. https://www.cnki.com.cn/Article/CJFDTOTAL-DZKT201203004.htm [42] 乔龙, 2016. 右江盆地及其周缘地区构造演化及铝土矿成矿作用(博士学位论文). 北京: 中国地质大学. [43] 秦建华, 吴应林, 颜仰基, 等, 1996. 南盘江盆地海西-印支期沉积构造演化. 地质学报, 70(2): 99-107. doi: 10.3321/j.issn:0001-5717.1996.02.001 [44] 苏煜, 1985. 广西平果铝土矿沉积环境和成因初探. 桂林冶金地质学院学报, 5(4): 315-321. https://www.cnki.com.cn/Article/CJFDTOTAL-GLGX198504004.htm [45] 王瑞湖, 李梅, 蒙永坚, 2010. 广西堆积型铝土矿成矿特征与资源潜力预测. 地质通报, 29(10): 1526-1532. doi: 10.3969/j.issn.1671-2552.2010.10.016 [46] 王庆飞, 邓军, 刘学飞, 等, 2012. 铝土矿地质与成因研究进展. 地质与勘探, 48(3): 430-448. https://www.cnki.com.cn/Article/CJFDTOTAL-DZKT201203003.htm [47] 张起钻, 2011. 桂西铝土矿成矿模式与勘查技术(博士学位论文). 北京: 中国地质大学. [48] 邹维雷, 1998. 山西省石炭纪铝土矿中鲕特征及成因. 世界地质, 17(4): 18-21. https://www.cnki.com.cn/Article/CJFDTOTAL-SJDZ804.003.htm