img

QQ群聊

img

官方微信

高级检索

黄金科学技术 ›› 2020, Vol. 28 ›› Issue (6): 812-824.doi: 10.11872/j.issn.1005-2518.2020.06.088

• 矿产勘查与资源评价 • 上一篇    下一篇

辽宁二道沟金矿床黄铁矿热电性特征及深部找矿预测

温佳伟1,2(),史鹏亮1,刘彦兵1,张静2(),屈海浪1,李元申1,胡博心1,缪广1   

  1. 1.北京金有地质勘查有限责任公司,北京 100011
    2.中国地质大学(北京)地球科学与资源学院,北京 100083
  • 收稿日期:2020-05-12 修回日期:2020-06-09 出版日期:2020-12-31 发布日期:2021-01-29
  • 通讯作者: 张静 E-mail:1938464236@qq.com;zhangjing@cugb.edu.cn
  • 作者简介:温佳伟(1996-),男,内蒙古乌兰察布人,硕士研究生,从事矿物学、岩石学和矿床学研究工作。1938464236@qq.com
  • 基金资助:
    中国黄金集团有限公司地质科研项目“内蒙古金厂沟梁—辽宁二道沟金矿田成矿系统研究及找矿预测”(WKY201701)

Thermoelectric Characteristics of Pyrite and Deep Prospecting Prediction in Erdaogou Gold Deposit, Liaoning Province

Jiawei WEN1,2(),Pengliang SHI1,Yanbing LIU1,Jing ZHANG2(),Hailang QU1,Yuanshen LI1,Boxin HU1,Guang MIAO1   

  1. 1.Beijing Jinyou Geological Exploration Co. ,Ltd. ,Beijing 100011,China
    2.School of Earth Sciences and Resources,China University of Geosciences,Beijing 100083,China
  • Received:2020-05-12 Revised:2020-06-09 Online:2020-12-31 Published:2021-01-29
  • Contact: Jing ZHANG E-mail:1938464236@qq.com;zhangjing@cugb.edu.cn

摘要:

辽宁二道沟金矿为赋存在中生代陆相火山岩中的岩浆热液型矿床,矿脉严格受构造控制。为了预测1号和3号脉深部的延伸规模、成矿环境和矿化情况,通过系统采集分析450~-305 m大部分中段的黄铁矿样品,对成矿温度、剥蚀率、黄铁矿热电性、热电性参数(XNP)均值以及P型黄铁矿不同标高的出现率和离散度进行了研究。结果表明:1号和3号脉成矿温度集中在130~280 ℃之间,属于中低温热液矿床;1号和3号脉剥蚀率等值线向深部分别为低值区和高值区,且均未封闭,热电导型分别以P型、P-N型和P-N型、N-P型为主,在-305 m中段深部XNP均值分别为83.33(矿脉上部)和-8(矿脉中部),在-215 m中段深部P型黄铁矿出现率分别增加和减少,综合说明-305 m中段分别处于1号脉的中上部和3号脉的中部偏下位置,1号脉深部延伸较大,3号脉深部仍有部分延伸;在1号脉-215 m中段深部金的成矿环境逐渐稳定且矿化很好,在3号脉-260 m中段深部金的成矿环境由动荡转为稳定且矿化较好。

关键词: 黄铁矿, 热电性特征, 剥蚀率, 离散度, 成矿温度, P型黄铁矿出现率

Abstract:

Erdaogou gold deposit is a magmatic-hydrothermal deposit hosted in continental volcanic rocks in Liaoning Province,its orebodies are strictly controlled by structures.Predecessors have done a lot of research on the genesis of Erdaogou gold deposit in Liaoning,and carried out a lot of exploration and prospecting work in the mining area, and found some new veins, but the deep prospecting prediction of some mined veins are relatively weak.After years of mining and production, the mine urgently needs to increase resource reserves to maintain development. At present, the control length of No.1 and No.3 veins are about 680 m, while the control length of No. 5-1 vein on the west has reached 1 600 m,and the deep part of No.1 and No.3 veins may still have a certain scale extension.At present,except for the deep prospecting prediction by using the thermoelectricity of pyrite at the middle section of the 250 m to -215 m depth of the No.3 vein, the systematic research on the No.1 and No.3 veins have not been carried out.In order to predict the extension,metallogenic environment and mineralization of No.1 and No.3 veins,this paper systematically studied the thermoelectric characteristics of pyrite,ore-forming temperature,veins denudation rate,XNP mean and the occurrence rate of different elevations of P-type pyrite of the samples at the 450 m to -305 m depth.The results show that the ore-forming temperatures of No.1 and No.3 veins are 130~280 ℃,which belong to medium-low temperature hydrothermal deposits.The average denudation rates of No.1 vein is 45.89%,the contour of denudation rate becomes a low value area to the deep and is not closed,the thermoelectric conductive types is mainly P type, P-N type and mean value of XNP at the -305 m depth is 83.33(upper part of vein),the occurrence rate of P-type pyrite at the middle section of -215 m increases. The average denudation rates of No.3 vein is 50%.The contour of denudation rate becomes a high value area and is not completely closed,the thermoelectric conductive types is mainly P-N type and N-P type,mean value of XNP at the -305 m depth is -8(middle part of vein),the occurrence rate of P-type pyrite in the middle section of -215 m decreases,which show the middle section of -305 m is the middle and upper part of No.1 vein and the lower part of No.3 vein.The deep part of No.1 vein extends greatly,while the No.3 vein still extends partly to the depth.The metallogenic environment of No.1 vein is gradually stable and greatly mine-ralized at the -215 m depth,but the metallogenic environment of No.3 vein changes from turbulent to stable and mineralization is better at the -260 m depth.

Key words: pyrite, thermoelectric characteristics, denudation rate, dispersion, ore-forming temperature, occurrence rate of P-type pyrite

中图分类号: 

  • P618.51

图1

二道沟金矿区域地质简图[图(a)据文献[4]修改;图(b)据文献[20]修改]1.华力西期或燕山期花岗岩;2.太古宙变质岩;3.震旦系地层;4.晚古生代地层;5.新生代、中生代地层;6.主要断裂;7.主要金矿点;8.研究区"

图2

二道沟金矿矿区地质简图(据文献[5]修改)1.太古宙斜长角闪岩;2.中生代火山岩;3.华力西期斑状花岗岩;4.燕山期斑状花岗闪长岩;5.燕山期花岗闪长岩;6.中生代闪长岩;7.主要断裂;8.矿脉;9.辽宁二道沟采矿权范围"

图3

二道沟金矿4号勘探线剖面简图1.矿脉;2.流纹岩;3.英安岩;4.凝灰岩;5.火山碎屑岩"

图4

二道沟金矿成矿阶段划分(a)石英脉中分布黄铁矿颗粒;(b)石英硫化物矿石;(c)他形粒状黄铁矿,少数为半自形结构;(d)方解石脉切穿石英多金属硫化物脉Py-黄铁矿;Au-金;Sp-闪锌矿;Gn-方铅矿;Qz-石英;Cal-方解石"

表1

1号脉黄铁矿热电系数α值"

中段/m样品编号N型α/(μV·℃-1P型α/(μV·℃-1
最大值最小值平均值频率/%最大值最小值平均值频率/%
450Y03-01-103.20-549.50-262.7440.00388.7027.00202.0660.00
370Y05-01-36.90-108.60-71.2625.00297.8019.50137.7175.00
Y05-02-14.20-109.20-45.3745.00286.1036.70158.6955.00
Y05-03-237.20-356.60-296.9010.00302.7057.90154.2690.00
Y05-04-33.20-66.30-51.7015.00338.0027.90157.5575.00
330Y06-010.000.000.000.00416.9098.90285.90100.00
Y06-02-85.50-95.70-91.4820.00338.10111.40254.8480.00
Y06-030.000.000.000.00368.70-29.70256.7495.00
250Y08-07-14.40-268.00-101.0825.00422.0049.30213.9175.00
Y08-08-61.40-118.70-86.1135.00370.9011.70169.2965.00
210Y09-01-37.90-177.10-83.2820.00482.0021.80264.1380.00
Y09-02-38.10-266.50-137.2025.00431.7063.00287.1575.00
170Y10-08-53.20-74.70-63.9510.00309.1010.80124.7390.00
130Y11-030.000.000.000.00450.00405.80427.9010.00
90Y12-10-30.00-416.20-143.2830.00300.9039.30159.8470.00
10Y14-060.000.000.000.00366.30177.30267.12100.00
Y14-07-13.70-519.20-263.8230.00424.6092.40298.4170.00
Y14-08-2.80-56.20-21.5315.00268.402.90154.0585.00
Y14-09-71.60-553.30-320.2975265.1032.00129.5425.00
Y14-10-25.40-96.90-60.9230.00324.9014.30114.9270.00
Y14-11-14.60-457.10-130.1845.00329.4040.50143.7455.00
-35Y15-01-26.00-95.70-53.4425.00365.2079.20232.2575.00
Y15-02-14.20-443.80-227.8460.00309.8054.80162.7440.00
Y15-030.000.000.000.00256.20-490.40-330.355.00
Y15-040.000.000.000.00284.9090.20196.07100.00
Y15-05-24.90-81.30-57.2730.00388.6029.60130.0570.00
-80Y16-010.000.000.000.00375.70127.40278.59100.00
Y16-020.000.000.000.00495.8058.70243.56100.00
Y16-03-36.00-137.70-79.0490.00261.80111.40186.6010.00
Y16-040.000.000.000.00312.7033.70137.57100.00
-125Y17-01-25.80-90.90-68.4315.00492.9094.30253.7485.00
-170Y18-01-24.50-43.200.0020.00592.6015.30169.4180.00
Y18-020.000.000.000.00370.00126.10268.24100.00
Y18-03-418.90-418.90-418.905.00416.7045.30251.9195.00
Y18-04-23.50-433.20-196.7425.00508.9023.50186.1475.00
Y18-05-11.80-220.20-75.1625.00367.6023.60134.2575.00
-215Y19-01-101.20-162.90-132.0510.00338.303.80205.4190.00
Y19-02-20.60-434.80-174.8715.00368.3023.10188.0985.00
Y19-030.000.000.000.00336.0069.00251.74100.00
Y19-04-18.70-368.30-156.1070.00266.005.30117.8330.00
-260Y20-01-26.30-36.90-31.6010.00366.8013.20193.1790.00
Y20-02-43.20-59.80-51.5010.00520.1019.10251.5390.00
Y20-03-27.20-130.80-64.6730.00237.702.7082.8970.00
Y20-04-138.10-138.10-138.105.00497.2096.70344.7995.00
Y20-050.000.000.000.00386.6017.90182.26100.00
-305Y21-010.000.000.000.00465.6082.90293.94100.00
Y21-02-108.70-123.70-116.2010.00462.20184.80300.2990.00
Y21-030.000.000.000.00361.90102.40264.24100.00

表2

3号脉黄铁矿热电系数α值"

中段/m样品编号N型α/(μV·℃-1P型α/(μV·℃-1
最大值最小值平均值频率/%最大值最小值平均值频率/%
450Y03-02-50.30-50.30-50.305.00370.60111.40218.9595.00
Y03-03-27.20-577.80-467.4685.00222.6021.00142.0715.00
Y03-04-16.00-595.20-344.2485.00253.70252.30253.0015.00
410Y04-01-26.30-175.10-83.8135.00354.8014.70189.8865.00
370Y05-050.000.000.000.00374.6087.30244.06100.00
Y05-070.000.000.000.00422.60148.20314.52100.00
330Y06-04-8.50-87.80-47.0465.0099.705.6046.4035.00
Y06-050.000.000.000.00236.2051.60157.67100.00
Y06-06-3.10-519.50-224.2685.00266.106.20148.1715.00
Y06-07-194.10-501.40-423.1040.00324.50167.60243.3960.00
250Y08-09-118.20-118.20-118.205.00367.1017.20226.2995.00
Y08-10-18.20-18.20-18.205.00421.70108.10282.3695.00
210Y09-03-67.80-67.80-67.805.00339.7016.30209.2195.00
Y09-040.000.000.000.00407.105.40263.32100.00
Y09-05-10.90-44.00-27.4510.00272.7073.80173.3590.00
170Y10-09-57.30-84.20-70.7510.00397.9018.30193.2890.00
Y10-10-61.60-140.00-90.6355.00213.108.5094.2645.00
Y10-11-19.10-103.80-56.1530.00420.8035.30248.3970.00
130Y11-04-45.70-205.70-94.9935.00359.0011.60155.3365.00
Y11-05-248.50-486.70-367.6010.00522.0055.70248.8390.00
Y11-06-33.90-521.70-355.2895.0051.0051.0051.005.00
Y11-07-14.50-455.30-164.1845.00270.9011.50172.9855.00
Y11-080.000.000.000.00337.20106.60283.61100.00
Y11-09-78.90-78.90-78.905.00468.9019.90249.9795.00
-35Y15-06-23.90-123.90-72.0230.00339.3038.10194.5770.00
-125Y17-02-54.30-505.70-171.7825.00390.2066.70200.1775.00
Y17-03-2.90-88.80-52.0970.00152.305.7052.2030.00
-170Y18-06-78.10-587.50-348.3635.00523.40177.2296.0865.00
Y18-07-16.30-90.20-50.5990.0031.602.7017.1510.00
-215Y19-05-48.40-80.20-60.3820.00391.9010.80181.3980.00
Y19-06-21.10-134.20-92.9015.00490.8010.40252.7285.00
Y19-07-8.10-16.20-12.1510.00531.0074.00276.0790.00
-260Y20-06-10.40-59.90-35.1510.00368.8026.20215.7690.00
Y20-070.000.000.000.00324.60103.40221.52100.00
Y20-08-2.50-146.70-54.7075.00246.902.50160.2825.00
Y20-09-133.10-520.90-376.7315.00335.2069.80203.4485.00
Y20-10-24.10-508.10-372.8135.00314.5080.40210.3565.00
Y20-11-42.90-89.40-59.1315.00375.7039.40154.8985.00
Y20-12-5.70-93.20-62.0225.00454.3017.30213.1075.00
-305Y21-05-72.60-371.30-220.0040.00451.1089.40284.4860.00
Y21-06-45.60-45.60-45.605.00309.10107.20191.4195.00
Y21-07-49.90-483.60-209.9775.00354.20129.10245.8825.00
Y21-08-59.00-113.80-84.3315.00291.1061.70166.5985.00
Y21-09-46.30-125.70-86.0010.00315.1060.40179.6390.00

图5

1号脉黄铁矿热电系数直方图"

图6

3号脉黄铁矿热电系数直方图"

图7

1号脉(a)和3号脉(b)黄铁矿热电系数—温度图"

图8

1号脉(a)和3号脉(b)黄铁矿成矿温度直方图"

图9

1号脉剥蚀率等值线图"

图10

3号脉剥蚀率等值线图"

图11

不同中段P型黄铁矿出现率"

图12

成矿环境及矿化标识图"

1 王有爵,王文清.辽西火山岩型金矿地质特征及成因讨论[J].辽宁地质,1990(4):289-303.
Wang Youjue,Wang Wenqing.Geological characteristics and genesis of volcanic gold deposits in western Liaoning Province[J].Liaoning Geology,1990(4):289-303.
2 刘宗秀,魏存弟,赵春光,等.金厂沟梁—二道沟金矿田地质地球化学特征及成因探讨[J].世界地质,2002,21(1):13-17.
Liu Zongxiu,Wei Cundi,Zhao Chunguang,et al.Discussin on genesis and geological-geochemical feature of Jinchanggouliang-Erdaogou gold minerogenetic field[J].World Geology,2002,21(1):13-17.
3 马光,刘继顺,张洪培.再论北票二道沟金矿床成矿物质来源[J].黄金,2004,25(10):11-15.
Ma Guang,Liu Jishun,Zhang Hongpei.New idea on the origin of ore-forming materials of Erdaogou gold deposit in Beipiao,Liaoning Province[J].Gold,2004,25(10):11-15.
4 聂飞,刘书生,董国臣,等.辽西二道沟金矿成矿物质来源:来自S-Pb同位素的证据[J].现代地质,2018,32(6):1283-1291.
Nie Fei,Liu Shusheng,Dong Guochen,et al.The ore-forming material of the Erdaogou gold deposit in west Liaoning Provice:Evidence form S-Pb isotopes[J].Geoscience,2018,32(6):1283-1291.
5 王志,徐忠勋,杨福和.辽宁省二道沟金矿地质及成因[J].长春地质学院学报,1989,19(3):287-297.
Wang Zhi,Xu Zhongxun,Yang Fuhe.Geology and genesis of Erdaogou gold deposit,Liaoning Province[J].Journal of Changchun University of Earth Science,1989,19(3):287-297.
6 苗来成,范蔚茗,翟明国,等.金厂沟梁—二道沟金矿田内花岗岩类侵入体锆石的离子探针U-Pb年代学及意义[J].岩石学报,2003,19(1):71-80.
Miao Laicheng,Fan Weiming,Zhai Mingguo,et al.Zircon SHRIMP U-Pb geochronology of the granitoid intrusions from Jinchanggouliang-Erdaogou gold orefield and its significance[J].Acta Petrologica Sinica,2003,19(1):71-80.
7 段培新,李长民,刘翠,等.内蒙古赤峰金厂沟梁金矿区花岗岩类年代学、地球化学特征及其地质意义[J].岩石学报,2014,30(11):3189-3202.
Duan Peixin,Li Changmin,Liu Cui,et al.Geochronology and geochemistry of the granites from the Jinchanggouliang gold deposit area in the Inner Mongolia and its geological significance[J].Acta Petrologica Sinica,2014,30(11):3189-3202.
8 朱翠祎,刘烊,张岱.中国金矿成矿地质特征、预测模型及资源潜力[J].地学前缘,2018,25(3):1-12.
Zhu Cuiyi,Liu Yang,Zhang Dai.Metallogenic geological features,prediction models and resources potential of gold deposits in China[J].Earth Science Frontiers,2018,25(3):1-12.
9 贾三石,王恩德,付建飞,等.冀东—辽西主要金矿矿集区地质特征的差异性与成矿作用的统一性探析[J].地质学报,2011,85(9):1493-1506.
Jia Sanshi,Wang Ende,Fu Jianfei,et al.Geological differences and mineralization unity of the key gold ore concentrated regions in eastern Hebei and western Liaoning Provinces[J].Acta Geologica Sinica,2011,85(9):1493-1506.
10 王成辉,王登红,黄凡,等.中国金矿集区及其资源潜力探讨[J].中国地质,2012,39(5):1125-1142.
Wang Chenghui,Wang Denghong,Huang Fan,et al.The major gold concentration areas in China and their resource potentials[J].Geology in China,2012,39(5):1125-1142.
11 Reach M,Deditius A,Chryssoulis S,et al.Pyrite as a record of hydrothermal fluid evolution in a porphyry copper system:A SIMS/EMPA trace element study [J].Geochimica et Cosmochimica Acta,2013,104(1):50-61.
12 高振敏,杨竹森,李红阳,等.黄铁矿载金的原因和特征[J].高校地质学报,2000,6(2):156-162.
Gao Zhenmin,Yang Zhusen,Li Hongyang,et al.Genesis and characteristics of gold hosted by pyrite[J].Geological Journal of China Universities,2000,6(2):156-162.
13 邵伟,陈光远,孙岱生.黄铁矿热电性研究方法及其在胶东金矿的应用[J].现代地质,1990,4(1):46-57.
Shao Wei,Chen Guangyuan,Sun Daisheng.Method of investigating thermoelectricity of pyrite and its application to pyrites from gold deposits in Jiaodong region[J].Geoscience,1990,4(1):46-57.
14 李青,李胜荣,张秀宝,等.河北省灵寿县西石门金矿黄铁矿热电性标型及其找矿意义[J].地质学报,2013,87(4):542-553.
Li Qing,Li Shengrong,Zhang Xiubao,et al.Thermoelectric coefficient of pyrite from the Xishimen gold deposit in Lingshou County,Hebei Province and its prospecting significance[J].Acta Geologica Sinica,2013,87(4):542-553.
15 刘冲昊,刘家军,王建平,等.陕西省铧厂沟金矿床主矿带黄铁矿热电性特征及其地质意义[J].地学前缘,2013,20(4):264-272.
Liu Chonghao,Liu Jiajun,Wang Jianping,et al.Thermoelectric characteristics of pyrite from the main ore zone of the Huachanggou gold deposit,Shaanxi Province and its significance[J].Earth Science Frontiers,2013,20(4):264-272.
16 刘华南,刘家军,李小伟,等.内蒙古新地沟金矿床黄铁矿热电性特征及深部找矿意义[J].中国地质,2018,45(4):819-838.
Liu Huanan,Liu Jiajun,Li Xiaowei,et al.Thermoelectric characteristics of pyrite from the Xindigou gold deposit in Inner Mongolia and its significance on deep prospecting[J].Geology in China,2018,45(4):819-838.
17 徐万臣,赵秀英.辽宁北票二道沟金矿床黄铁矿和石英找矿标型性研究[J].地质实验室,1992,8(5):292-298.
Xu Wanchen,Zhao Xiuying.Study on prospecting typomorphism of pyrite and quartz in Erdaogou gold deposit,Beipiao,Liaoning[J].Geological Laboratory,1992,8(5):292-298.
18 李志国,李青云,董国臣.辽宁二道沟金矿床脉状矿体中黄铁矿热电性标型特征[J].地质论评,2013,59(增):524-525.
Li Zhiguo,Li Qingyun,Dong Guochen.Thermoelectric typomorphic characteristics of pyrite in vein orebody of Erdaogou gold deposit,Liaoning[J].Geological Review,2013,59(Supp.):524-525.
19 王鹏,董国臣,李志国,等.辽西北票二道沟金矿的成矿特点和黄铁矿热电性特征[J].现代地质,2013,27(2):314-323.
Wang Peng,Dong Guochen,Li Zhiguo,et al.Ore-forming characteristics and pyroelectricity of pyrite of the Erdaogou gold deposit,Beipiao,western Liaoning[J].Geoscience,2013,27(2):314-323.
20 朴寿成,李绪俊,师磊,等.赤峰—朝阳金矿化集中区元素分带特征及其应用[J].地质与勘探,2006,42(1):17-20.
Shoucheng Piao,Li Xujun,Shi Lei,et al.Element zoning and its application in the Chifeng-Chaoyang auriferous province[J].Geology and Exploration,2006,42(1):17-20.
21 王鹏,董国臣,许卫东,等.辽西北票二道沟金矿的矿化特点及其意义[J].地质与勘探,2013,49(3):429-436.
Wang Peng,Dong Guochen,Xu Weidong,et al.Mineralization characteristics of the Erdaogou gold deposit,western Liaoning and their significance[J].Geology and Exploration,2013,49(3):429-436.
22 张连昌,白阳,朱明田,等.华北克拉通金矿床区域成矿差异性分析[J].地球科学与环境学报,2018,40(4):363-380.
Zhang Lianchang,Bai Yang,Zhu Mingtian,et al.Regional differences of gold deposits on the North China Craton[J].Journal of Earth Sciences and Environment,2018,40(4):363-380.
23 徐万臣.辽宁北票二道沟金矿床地球化学特征及意义[J].地质与资源,2007,16(4):263-269.
Xu Wanchen.Geochemistry and significance of Erdaogou gold deposit in Beipiao,Liaoning Province[J].Geology and Resources,2007,16(4):263-269.
24 杨竹森,李红阳,高振敏,等.胶东北部超高品位金矿黄铁矿热电性研究[J].矿床地质,2000,19(4):307-314.
Yang Zhusen,Li Hongyang,Gao Zhenmin,et al.A study on thermoelectricity of pyrite from superhigh-grade gold deposits,northern Jiaodong[J].Mineral Deposits,2000,19(4):307-314.
25 谢玉玲,徐九华,钱大益,等.太白金矿黄铁矿热电性及其在找矿中的应用[J].北京科技大学学报,1999,21(1):1-5.
Xie Yuling,Xu Jiuhua,Qian Dayi,et al.Pyroelectricity of pyrite and application to prospecting in Taibai gold deposit[J].Journal of University of Science and Technlogy Beijing,1999,21(1):1-5.
26 要梅娟,申俊峰,李胜荣,等.河南嵩县前河金矿黄铁矿的热电性、热爆特征及其与金矿化的关系[J].地质通报,2008,27(5):649-656.
Yao Meijuan,Shen Junfeng,Li Shengrong,et al.Thermoelectric and thermal decrepitation characteristics of pyrite in the Qianhe gold deposit,Songxian County,Henan,China,and their relationships with gold mineralization[J].Geological Bulletin of China,2008,27(5):649-656.
27 刘坤,刘家军,吴杰,等.甘肃马坞金矿床8号矿体黄铁矿热电性特征及其地质意义[J].现代地质,2014,28(4):711-720.
Liu Kun,Liu Jiajun,Wu Jie,et al.Thermoelectric characteristic of pyrites from No.8 orebody of the Mawu gold deposit in Gansu Province and its significance[J].Geoscience,2014,28(4):711-720.
28 张玙,袁万明,王庆飞,等.吉林夹皮沟金矿带黄铁矿热电性及热爆裂特征[J].现代地质,2010,24(5):870-879.
Zhang Yu,Yuan Wanming,Wang Qingfei,et al.Thermoelectric and thermal decrepitation characteristics of pyrites from Jiapigou gold ore belt,Jilin Province[J].Geoscience,2010,24(5):870-879.
29 Андреев Б С.Пирит золоторудных месторождений[M].Москва:Изд.Наука,1992:51-63.
30 权志高.庞家河、左家庄金矿床载金矿物黄铁矿热电性的研究[J].矿产与地质,1995,9(6):509-513.
Quan Zhigao.Study on the thermoelectricity of gold-bearing pyrite in Pangjiahe and Zuojiazhuang gold deposits[J].Mineral Resources and Geology,1995,9(6):509-513.
31 张方方,王建平,刘冲昊,等.陕西双王金矿黄铁矿晶体形态和热电性特征对深部含矿性的预测[J].中国地质,2013,40(5):1634-1643.
Zhang Fangfang,Wang Jianping,Liu Chonghao,et al.The crystal forms and thermoelectricity of pyrite from the Shuangwang gold deposit,Shaanxi Province and their applications to metallogenic prognosis[J].Geology in China,2013,40(5):1634-1643.
[1] 王智琳,伍杨,许德如,邹少浩,董国军,彭尔柯,宁钧陶,康博. 湘东北长沙—平江断裂带关键金属钴的赋存状态与成矿规律[J]. 黄金科学技术, 2020, 28(6): 779-785.
[2] 高华, 谢玉华, 杨亮, 张哲, 柯新星, 刘晓敏, 罗建镖, 刘琦, 刘继顺, 王智琳, 孔华. 湖南通道地区金矿床中黄铁矿成分标型特征及对矿床成因的启示[J]. 黄金科学技术, 2020, 28(5): 712-726.
[3] 陈港, 陈懋弘, 马克忠, 葛锐, 郭申祥, 吴启强, 原其生. 广西贵港六梅金矿的成因类型及找矿意义[J]. 黄金科学技术, 2020, 28(4): 479-496.
[4] 张振, 宁生元, 徐增田. 胶东玲珑九曲金矿床载金黄铁矿矿物学特征及其深部找矿意义[J]. 黄金科学技术, 2020, 28(3): 328-336.
[5] 陈玉民, 张华锋, 张聪颖, 胡换龙, 王昭坤, 曾庆栋, 范宏瑞. 黄铁矿标型特征对胶东三山岛金矿深部矿化的启示[J]. 黄金科学技术, 2019, 27(5): 637-647.
[6] 罗清威,王保国,义爱文,张克川,潘泽,张盛亚. 坦桑尼亚某绿岩带型金矿床中黄铁矿的标型特征及意义[J]. 黄金科学技术, 2019, 27(1): 15-24.
[7] 张蕾蕾, 张静, 王琦崧, 陈良, 陈叙安. 熊耳山地区槐树坪金矿床黄铁矿特征及其地质意义[J]. 黄金科学技术, 2018, 26(4): 481-491.
[8] 杨玮, 董萍, 邓忠. 某重选尾矿金浮选试验研究[J]. 黄金科学技术, 2018, 26(2): 203-211.
[9] 李佳峰, 杨洪英, 佟琳琳, 金哲男, 张登超. 抛刀岭难处理金精矿细菌氧化-提金实验研究[J]. 黄金科学技术, 2018, 26(2): 248-253.
[10] 宋学文,朱加乾,罗增鑫,陈波. 某氰渣工艺矿物学及金浮选工艺研究[J]. 黄金科学技术, 2018, 26(1): 89-97.
[11] 王晓青,杨兴科,芮会超. 内蒙古岱王山金矿黄铁矿形态标型及其变化规律与找矿意义[J]. 黄金科学技术, 2017, 25(5): 39-46.
[12] 刘纯波,张术根,黄超文,刘炫,莫京龙,李凯林. 云南东川播卡金矿床黄铁矿成因矿物学特征研究[J]. 黄金科学技术, 2016, 24(5): 40-47.
[13] 冯章标,俞献林,陈江安. 安徽某金铅锌硫化矿选矿新工艺试验研究[J]. 黄金科学技术, 2016, 24(3): 87-93.
[14] 梁长利,覃文庆,陈景河,杨杭渠,衷水平. 氯离子对载金黄铁矿生物氧化的影响[J]. 黄金科学技术, 2015, 23(4): 86-90.
[15] 许涛,廖美婷,衷水平,苏妤芸,何美丽. 紫金山黄铁矿的第一性原理和前线轨道理论分析[J]. 黄金科学技术, 2015, 23(4): 57-62.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] 闫杰, 覃泽礼, 谢文兵, 蔡邦永. 青海南戈滩—乌龙滩地区多金属地质特征与找矿潜力[J]. J4, 2010, 18(4): 22 -26 .
[2] 宋贺民, 冯喜利, 丁宪华. 太行山北段交界口矿区地质地球化学特征及找矿方向[J]. J4, 2010, 18(3): 54 -58 .
[3] 李淑芳, 于永安, 朝银银, 王美娟, 张岱, 刘君, 孙亮亮. 在辽东成矿带找寻层控型金矿床靶区[J]. J4, 2010, 18(3): 59 -62 .
[4] 胡琴霞, 李建忠, 喻光明, 谢艳芳, 张圣潇. 白龙江成矿带金矿点初探[J]. J4, 2010, 18(3): 51 -53 .
[5] 陈学俊. 青海直亥买休玛金矿床矿体特征与找矿前景分析[J]. J4, 2010, 18(4): 50 -53 .
[6] 崔廷军, 逯克思, 庄勇, 傅星. 青海省柴达木盆地南缘金成矿带特征及成矿规律浅析[J]. J4, 2010, 18(3): 63 -67 .
[7] 杨明荣, 牟长贤. 原子荧光法测定化探样品中砷和锑的不确定度评定[J]. J4, 2010, 18(3): 68 -71 .
[8] 苏建华, 陆树林. 从高酸低浓度尾液中萃取金的试验[J]. J4, 2010, 18(3): 72 -75 .
[9] 王大平, 宋丙剑, 韦库明. 大功率激电测量在辽宁北水泉寻找隐伏矿床的应用[J]. J4, 2010, 18(3): 76 -78 .
[10] 刘胜光, 高海峰, 黄锁英. 电子手薄在山东焦家金矿地质专业中的应用[J]. J4, 2010, 18(3): 79 -82 .