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81.
我国现有锰矿资源状况,不能满足钢铁工业发展的需要。寻找低磷低铁低硅富锰矿,是解决锰矿资源短缺的重要途径。城口锰矿具有较大的找矿前景,锰矿层产出稳定,锰含量高,铁含量低,烧失量大。加强城口矿区勘查,扩大矿床规模,可望成为我国锰矿的重要生产基地。 相似文献
82.
83.
I.IntroductionThroughouthistorymineralshavebeenadeterminantfactorintheevolutionofsocietiesandcivilization.TheveryobviousimpactofmineralsonMan’sevolutioncanbetracedintermsofMan’sacquaintancewithminerals—thePrestoneAge,theStoneAge,theBronzeAge,theIronAge,… 相似文献
84.
Walter Lorenz 《Natural Resources Research》1997,6(1):5-10
For those who deal with aspects of regional planning that are affected by the extraction of near-surface mineral resources,
a simple map that shows the distribution of these resources accompanied by explanatory notes is essential; a preliminary 1:1
million-scale map was published in 1982. The Geological Surveys of the Federal States of Germany, in conjunction with the
Federal Institute for Geosciences and Natural Resources, are compiling a series of maps that will cover the country at a scale
of 1:200,000. When completed by the end of the next decade, this set of maps will consist of 57 sheets, each of which will
be accompanied by explanatory notes. By the end of 1995, 17 sheets had been published
BGR reports on the status of a Federal mineral-resource mapping program. 相似文献
85.
矿产资源开发环境影响评价的指标体系及方法 总被引:7,自引:0,他引:7
通过对矿产资源开发环境影响因素的系统分析,建立了环境影响评价的指标体系,它包括自然环境和社会经济环境两大指标体系;简评了矿产资源开发的环境影响评价方法;提出了建立矿产资源开发环境影响评价信息系统的设想,并简要介绍了该信息系统的组成、主要功能及值得重视研究的几个问题。 相似文献
86.
许多矿物中文名称与英文名称的含意不一致,为了正确理解矿物的英文名称,本文介绍了310个常见矿物和重要矿物的英文名称的含意。 相似文献
87.
针对与矿石矿物共存透明脉石矿物所含流体包裹体并不完全代表成矿流体,红外显微技术及EPMA、SEM等常规表面分析手段无法满足不透明矿石矿物所含单个低盐度流体包裹体研究的实际困难,本文首次成功地应用具同步扫描成象功能、电子束斑空间分辨率较高、信噪比较好的PHI595SAM/AES这一当代高灵敏表面分析技术,按单矿物分选→二次去离子水反复超声清洗→外真空热爆→在金属铟片上压制成样的实验流程对新疆阿尔泰多拉纳萨依金矿床含金黄铁矿所含单个低盐度流体包裹体的液相组成进行了静态定点分析,实验取得了满意结果。 相似文献
88.
江苏药用矿物资源初探 总被引:3,自引:0,他引:3
江苏拥有丰富的药用矿物资源,大部分药用矿物均有产出。通过对药用矿物的分类,阐述了药用矿物的治疗机理和各自的实际功能。方位 为:江苏药有矿物资源的合理开发,不仅能为人类健康服务,而且也能产生可观的经济效益。 相似文献
89.
Magmatic arc metamorphism: petrology and temperature history of metabasic rocks in the Coastal Cordillera of northern Chile 总被引:6,自引:0,他引:6
We investigated the metamorphic cooling history of underplated magmatic rocks at midcrustal depth. Granulites and amphibolites occur within the Jurassic magmatic belt of the Coast Range south of Antofagasta in northern Chile between 23°25' and 24°20' S. The protoliths of the metamorphic rocks are basic intrusions of Early Mesozoic age. They are part of the magmatically formed crust, and the essentially dry magmas were emplaced in an extensional regime. The granulites (clinopyroxene–orthopyroxene–plagioclase) show all stages of fabric development from magmatic to granoblastic fabrics. Pyroxene compositions were reset at temperatures around 800° C independent of the stage of textural equilibration. The granulites were partially amphibolitized at upper amphibolite facies temperatures of 600–700° C. Following cooling, a possible reheating to greenschist facies temperatures around 500° C is indicated by prograde zoning in magnetite–ilmenite pairs. Mineral assemblages are not suitable for barometry, but a conservative estimation of the garnet-in reaction at given whole-rock compositions suggests maximum pressures in the granulite facies of around 5 kbar, and similar pressures are indicated by phengite barometry for the greenschist facies. The P–T path of granulite–amphibolite metamorphism is one of slow cooling from magmatic temperatures with heterogeneous deformation. The thinning of the pre-Andean (Precambrian–Triassic) crust was apparently compensated by the magmatic underplating and this special tectonomagmatic setting caused the prolonged residence of the accreted rocks at midcrustal levels. 相似文献
90.
Tectonometamorphic evolution of the Himalayan metamorphic core between the Annapurna and Dhaulagiri, central Nepal 总被引:12,自引:0,他引:12
The metamorphic core of the Himalaya in the Kali Gandaki valley of central Nepal corresponds to a 5-km-thick sequence of upper amphibolite facies metasedimentary rocks. This Greater Himalayan Sequence (GHS) thrusts over the greenschist to lower amphibolite facies Lesser Himalayan Sequence (LHS) along the Lower Miocene Main Central Thrust (MCT), and it is separated from the overlying low-grade Tethyan Zone (TZ) by the Annapurna Detachment. Structural, petrographic, geothermobarometric and thermochronological data demonstrate that two major tectonometamorphic events characterize the evolution of the GHS. The first (Eohimalayan) episode included prograde, kyanite-grade metamorphism, during which the GHS was buried at depths greater than c. 35 km. A nappe structure in the lowermost TZ suggests that the Eohimalayan phase was associated with underthrusting of the GHS below the TZ. A c. 37 Ma 40Ar/39Ar hornblende date indicates a Late Eocene age for this phase. The second (Neohimalayan) event corresponded to a retrograde phase of kyanite-grade recrystallization, related to thrust emplacement of the GHS on the LHS. Prograde mineral assemblages in the MCT zone equilibrated at average T =880 K (610 °C) and P =940 MPa (=35 km), probably close to peak of metamorphic conditions. Slightly higher in the GHS, final equilibration of retrograde assemblages occurred at average T =810 K (540 °C) and P=650 MPa (=24 km), indicating re-equilibration during exhumation controlled by thrusting along the MCT and extension along the Annapurna Detachment. These results suggest an earlier equilibration in the MCT zone compared with higher levels, as a consequence of a higher cooling rate in the basal part of the GHS during its thrusting on the colder LHS. The Annapurna Detachment is considered to be a Neohimalayan, synmetamorphic structure, representing extensional reactivation of the Eohimalayan thrust along which the GHS initially underthrust the TZ. Within the upper GHS, a metamorphic discontinuity across a mylonitic shear zone testifies to significant, late- to post-metamorphic, out-of-sequence thrusting. The entire GHS cooled homogeneously below 600–700 K (330–430 °C) between 15 and 13 Ma (Middle Miocene), suggesting a rapid tectonic exhumation by movement on late extensional structures at higher structural levels. 相似文献