Identification of high-purity quartz raw materials from granites in the Xixia area, east Qinling orogenic belt
-
-
-
表 1 二云母二长花岗岩代表性样品实验室提纯试验结果与IOTA-CG产品主要杂质元素含量对比表(×10−6)
Table 1. Comparison of contents of main impurity elements between laboratory purification test results of representative samples of two-mica monzonite granite and IOTA-CG products(×10−6)
元素含量
样品编号Al Na K Ca P Fe Mg Mn Ni Cu Li Ti B Cr Zn 杂质
总量HCG-1K4 15.080 0.76 7.42 0.62 0.25 5.41 0.60 ND ND ND 0.15 10.69 ND ND 0.04 41.02 IOTA-CG 14.70 1.00 0.70 0.60 0.10 0.30 0.04 0.029 0.001 0.019 0.5 1.2 0.1 0.007 — 19.30 注:测试单位为连云港市质量技术综合检验检测中心,测试时间为2024年5月 -
[1] GÖTZE T, RAMSEYER K. , 2012. Trace element characteristics, luminescence properties and real structure of quartz[M]//GÖTZE J, MÖCKE LR. Quartz: deposits, mineralogy and analytics. Berlin’Heidelberg: Springer: 265-285.
[2] HE Z Z, ZHU C H, DENG Y F, et al., 2024. Characteristics and quality of high purity quartz raw materials in the southern Dabie Mountains region[J]. Mineral Exploration, 15(12): 2270-2280. (in Chinese with English abstract
[3] MÜLLER A, WANVIK J E, IHLEN P M, 2012. Petrological and chemical characterisation of high- purity quartz deposits with examples from Norway[M]//GÖTZE J, MÖCKE LR. Quartz: deposits, mineralogy and analytics. Berlin’Heidelberg: Springer: 71-118.
[4] SNOOK B R, 2014. Towards exploration tools for high purity quartz: An example from the South Norwegian Evje-Iveland pegmatite belt[D]. Exeter: University of Exeter: 1-284.
[5] TANG C H, ZHANG S H, YUAN J, et al. , 2024. Deposit characteristics and potential resources of silicon material for high-purity quartz of muscovite-pegmatite-granite type in Ningdu, Jiangxi Province[J]. Geological Bulletin of China, 43(5): 667−679. (in Chinese with English abstract
[6] Wang J Y, 2021. Global high purity quartz deposits: Resources distribution and exploitation status[J]. Acta Petrologica et Mineralogica, 40(1): 131-141. (in Chinese with English abstract
[7] WANG L, 2022. Concept of high purity quartz and classification of its raw materials[J]. Conservation and Utilization of Mineral Resources, 42(5): 55-63. (in Chinese with English abstract
[8] WANG Y Y, DENG Y F, ZHAN J H, et al., 2021. Review on the research of characteristics and ore deposit genesis of high purity raw quartz[J]. Geological Review, 67(5): 1465-1477. (in Chinese with English abstract
[9] ZHANG C L, LIU L, WANG T, et al., 2013. Granitic magmatism related to early Paleozoic continental collision in North Qinling[J]. Chinese Science Bulletin, 58(35): 4405-4410. doi: 10.1360/csb2013-58-23-2323
[10] ZHANG G W, GUO A L, DONG Y P, et al., 2019. Rethinking of the Qinling orogen[J]. Journal of Geomechanics, 25(5): 746-768. (in Chinese with English abstract
[11] ZHANG H Q, ZHU L K, ZHAO H B, et al., 2022a. First discovery of the Longquanping pegmatitic high-purity quartz deposit in the area of Lushi, Henan: implications for exploration[J]. Conservation and Utilization of Mineral Resources, 42(4): 153-158. (in Chinese with English abstract
[12] ZHANG H Q, TAN X M, MA Y M et al., 2022b. Geological characteristics of pegmatite type high-purity quartz in Altay, xinjiang and preparation technology of 4N8 grade products[J]. Conservation and Utilization of Mineral Resources, 42(5): 1-7. (in Chinese with English abstract
[13] ZHANG L, LIU L, ZHU L K, et al., 2024. Discussion on the geological evaluation for high purity quartz raw material[J]. Acta Petrologica Sinica, 40(4): 1311-1326. (in Chinese with English abstract doi: 10.18654/1000-0569/2024.04.16
[14] ZHANG Y, ZHAO H B, LIU L, et al., 2022. Timing of granite pegmatite-type high-purity quartz deposit in the Eastern Qinling, China: constraints from in-situ LA-ICP-MS trace analyses of quartz and monazite U–Pb dating[J]. Acta Geochimica, 41(2): 197-207. doi: 10.1007/s11631-021-00505-y
[15] ZHAO H B, WANG H J, Zhang Y, et al., 2024. Geochemistry, zircon U−Pb and Hf isotopes of the high−purity pegmatite−quartz deposits in the Eastern Qinling and discussion on its prospecting direction[J]. Geology in China, 51(1): 42-56. (in Chinese with English abstract).
[16] ZHAO J Z, ZHANG C, ZHANG S S, et al., 2021. Study on the availability of high purity quartz minerals in granite-pegmatite in the East Qinling[J]. Bulletin of Mineralogy, Petrology and Geochemistry, 41(6): 1305-1308. (in Chinese)
[17] 何振忠,朱传海,邓宇峰,等,2024. 南大别山地区高纯石英原料矿特征及质量影响因素[J]. 矿产勘查,15(12):2270-2280.
[18] 唐春花,张生辉,袁晶,等,2024. 江西宁都白云母伟晶花岗岩型高纯石英用硅质原料矿床特征与资源潜力[J]. 地质通报,43(5):667-679.
[19] 汪灵,2022. 高纯石英的概念及其原料品级划分[J]. 矿产保护与利用,42(5):55-63.
[20] 王九一,2021. 全球高纯石英原料矿的资源分布与开发现状[J]. 岩石矿物学杂志,40(1):131-141. doi: 10.3969/j.issn.1000-6524.2021.01.012
[21] 王云月,邓宇峰,詹建华,等,2021. 高纯石英原料特征和矿床成因研究现状综述[J]. 地质论评,67(5):1465-1477.
[22] 张成立,刘良,王涛等,2013. 北秦岭早古生代大陆碰撞过程中的花岗岩浆作用[J]. 科学通报,58(23):2323-2329.
[23] 张国伟,郭安林,董云鹏,等,2019. 关于秦岭造山带[J]. 地质力学学报,25(5):746-768.
[24] 张海啟,朱黎宽,赵海波,等,2022a. 河南卢氏龙泉坪伟晶岩型高纯石英矿床的首次发现及找矿意义[J]. 矿产保护与利用,42(4):153-158.
[25] 张海啟,谭秀民,马亚梦,等,2022b. 新疆阿尔泰伟晶岩型高纯石英矿床地质特征及4N8级产品制备技术[J]. 矿产保护与利用,42(5):1-7.
[26] 张亮,刘磊,朱黎宽,等,2024. 关于高纯石英原料矿石地质学评价方法的探讨[J]. 岩石学报,40(4):1311-1326.
[27] 赵海波,王红杰,张勇,等,2024. 东秦岭伟晶岩型高纯石英矿地球化学、锆石U-Pb及Hf同位素研究:对高纯石英找矿方向的探讨[J]. 中国地质,51(1):42-56.
[28] 赵金洲,张驰,张森森,等,2022. 东秦岭花岗伟晶岩中高纯石英矿物的可利用性研究[J]. 矿物岩石地球化学通报,41(6):1305-1308.
-