矿物包裹体在形成过程中保存了所在地质环境及不同阶段的物理化学条件信息,并且其形成后没有外来物质的加入和自身物质的带出,因此对流体包裹体进行分析是研究成矿地质环境的重要手段之一。本文以相山铀矿田邹家山、沙洲矿床为例,采用...矿物包裹体在形成过程中保存了所在地质环境及不同阶段的物理化学条件信息,并且其形成后没有外来物质的加入和自身物质的带出,因此对流体包裹体进行分析是研究成矿地质环境的重要手段之一。本文以相山铀矿田邹家山、沙洲矿床为例,采用流体包裹体分析法计算矿床的成矿深度和剥蚀厚度。结果表明,邹家山矿床成矿深度320~1640m,剥蚀厚度320~416m;沙洲矿床成矿深度38~1425m,剥蚀厚度190~240m,大体上与前人研究结论一致。Haas(1976)图解法在沙洲矿床成矿深度研究中比较接近合理,邵洁涟等(1986)的经验公式法在邹家山矿床成矿深度研究中最为合理,Bischoff et al.(1991)T-ρ相图法误差均较大。展开更多
Taking the contribution of the tectonic force to the total hydrostatic pressure into account, the author puts forward a new method on the calculation of the depth of petrogenesis and metallogenesis which is summarized...Taking the contribution of the tectonic force to the total hydrostatic pressure into account, the author puts forward a new method on the calculation of the depth of petrogenesis and metallogenesis which is summarized as follows: first the tectonic added hydrostatic pressured Ps is subtracted from the total hydrostatic pressure P, then using their difference Pr, according to the general method the depth of petrogenesis and metallogenesis can be determined in consideration of lateral constraint.By the new method the following data on the depths of the metallogenesis are obtained: 2 243.6 m (No. I and No. II veins with metallogenic epoch of 105 Ma) and 1 632.38 m (No. III vein with 105 Ma) for Jiaojia orefield, and 3 454.97 m (NE-trending zone with 213.2 Ma), 1 902.79 m (ENE-trending zone with 100.28 Ma), 1 090.97 m (NE-trending zone with 80.67 Ma) and 720.55 m (NNE-trending zone with 71.86 Ma) for Linglong orefield.展开更多
The depth is important for ore finding in Jiaodong gold deposit. However, many geologists are still discussing how to confirm the depth for the tectonic and metallogenesis formation. The authors of this paper propose ...The depth is important for ore finding in Jiaodong gold deposit. However, many geologists are still discussing how to confirm the depth for the tectonic and metallogenesis formation. The authors of this paper propose a new method-the correction of metallogenic depth via its structure to calculate the depth. This method, based on the crust rock in a solid stress state, emphasizes the elastic pattern rather than the static fluid pattern. In addition, this method is more appropriate to the actual situation in the crust than the method of weight/special weight. The authors of this paper illustrating, with the Jiaodong gold deposit as an example, the metallogenic depth correction via structure conclude that the depth of the most deposits, lower than 4-6 km, is often 2.5 km. Therefore, the authors suggest that there exists a second enrichment belt and that ore resources are more potential at the belt of Jiaodong area. These results have been demonstrated by years of exploration.展开更多
文摘矿物包裹体在形成过程中保存了所在地质环境及不同阶段的物理化学条件信息,并且其形成后没有外来物质的加入和自身物质的带出,因此对流体包裹体进行分析是研究成矿地质环境的重要手段之一。本文以相山铀矿田邹家山、沙洲矿床为例,采用流体包裹体分析法计算矿床的成矿深度和剥蚀厚度。结果表明,邹家山矿床成矿深度320~1640m,剥蚀厚度320~416m;沙洲矿床成矿深度38~1425m,剥蚀厚度190~240m,大体上与前人研究结论一致。Haas(1976)图解法在沙洲矿床成矿深度研究中比较接近合理,邵洁涟等(1986)的经验公式法在邹家山矿床成矿深度研究中最为合理,Bischoff et al.(1991)T-ρ相图法误差均较大。
基金Project supported by the Foundation of State Planning Commission, China and the Foundation of the State Science and Technology Commission,China
文摘Taking the contribution of the tectonic force to the total hydrostatic pressure into account, the author puts forward a new method on the calculation of the depth of petrogenesis and metallogenesis which is summarized as follows: first the tectonic added hydrostatic pressured Ps is subtracted from the total hydrostatic pressure P, then using their difference Pr, according to the general method the depth of petrogenesis and metallogenesis can be determined in consideration of lateral constraint.By the new method the following data on the depths of the metallogenesis are obtained: 2 243.6 m (No. I and No. II veins with metallogenic epoch of 105 Ma) and 1 632.38 m (No. III vein with 105 Ma) for Jiaojia orefield, and 3 454.97 m (NE-trending zone with 213.2 Ma), 1 902.79 m (ENE-trending zone with 100.28 Ma), 1 090.97 m (NE-trending zone with 80.67 Ma) and 720.55 m (NNE-trending zone with 71.86 Ma) for Linglong orefield.
文摘The depth is important for ore finding in Jiaodong gold deposit. However, many geologists are still discussing how to confirm the depth for the tectonic and metallogenesis formation. The authors of this paper propose a new method-the correction of metallogenic depth via its structure to calculate the depth. This method, based on the crust rock in a solid stress state, emphasizes the elastic pattern rather than the static fluid pattern. In addition, this method is more appropriate to the actual situation in the crust than the method of weight/special weight. The authors of this paper illustrating, with the Jiaodong gold deposit as an example, the metallogenic depth correction via structure conclude that the depth of the most deposits, lower than 4-6 km, is often 2.5 km. Therefore, the authors suggest that there exists a second enrichment belt and that ore resources are more potential at the belt of Jiaodong area. These results have been demonstrated by years of exploration.