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1.
通过研究无烟煤层中泥岩夹矸的岩石矿物学特征,探讨其主要成分高岭石发生转化的主要方向及影响因素。对晋城矿区实地观测,并采集一定量的标本,通过显微镜下鉴定、差热分析、X射线粉晶衍射分析、红外吸收光谱分析等研究,发现无烟煤层泥岩夹矸中高岭石主要向伊利石转化,并有伊利石-蒙脱石(I/M)混层矿物及蒙脱石出现。煤的变质程度升高、夹矸矿物转化的主要原因是区域变质作用及周围介质条件的影响。  相似文献   
2.
渭北煤田面积约10万km2。分布于太原组顶部5#煤层中的粘土岩夹矸,上部层位分为两上分层,上分层夹矸厚度薄,下分层夹矸厚约02m,俗称“200矸”;下部层位夹矸厚度变化较大。该文详细论述了粘土岩夹矸的岩矿特征。根据“200矸”中含有副象β-石英、高透长石、锆石、磁铁矿等高温矿物组合,特有的粒序层理和岩性在全煤田十分稳定等特点,表明其原始物质来源于降落火山灰。根据TiO2/Al2O3比值的明显变化,探讨了陆源组分的加入对火山灰蚀变粘土岩夹矸化学成分的影响。以“200矸”为等时标志层,解决了5#煤层在区域上的对比。  相似文献   
3.
晋北晚古生代煤系中的高岭岩,其主要类型和富集层是:(1)本溪组底部的铝土质高岭岩;(2)太原组夹矸高岭岩;(3)山西组夹矸高岭岩。根据不同层位高岭岩的岩石、矿物、地球化学特征的差异,分析了高岭岩可能的源岩性质,并探讨了其成因和形成的模式  相似文献   
4.
The Fire Clay tonstein [Pennsylvanian (Upper Carboniferous), Westphalian Series, Duckmantian Stage]–a kaolinized, volcanic-ash deposit occurring in Kentucky, West Virginia, Tennessee, and Virginia–is the most widespread bed in the Middle Pennsylvanian of the central Appalachian basin, USA. A concordant single-crystal U–Pb zircon datum for this tonstein gives a 206Pb/238U age of 314.6 ± 0.9 Ma (2σ). This age is in approximate agreement with a mean sanidine plateau age of 311.5 ± 1.3 Ma (1σ, n = 11) for the Fire Clay tonstein. The difference between the two ages may be due to bias between the 40K and 238U decay constants and other factors. The age of the Fire Clay tonstein has important implications for Duckmantian Stage (Westphalian Series) sedimentation rates, correlations with the Westphalian Series of Europe, Middle Pennsylvanian volcanic events, and the late Paleozoic time scale.  相似文献   
5.
朱如凯 《矿物学报》1996,16(3):245-252
本文主要根据XRD分析和IR光谱分析的有关参数,对山西境内产部晚古生代煤系夹矸高岭岩的矿物结构特征进行了详细研究,认为高岭石矿物结晶度与其显微结构有关,隐晶质高岭岩比碎屑团粒状和蠕虫状高岭岩结晶指数高。高岭石的无序度主要反映于(a,b)面上的随机层错,同时与样品中低缺陷相的比率有关。动荡的水介质环境可能导致其无序度的增加。  相似文献   
6.
Trace element compositions were determined (by instrumental neutron activation analysis; INAA) in 30 samples of synsedimentary volcanic ash-derived tonsteins and detrital claystones from coal seams within the late Permian coal-bearing formation of eastern Yunnan and western Guizhou Provinces, China. The characteristics of trace-element geochemistry in the tonsteins can be distinguished from those of detrital claystones because of the former's unique volcanic-ash origin. The detrital claystones are characterized by their relatively high content of V, Ti, Sc, Cr, Co and Ni, relatively low content of Th and U, Th/U ratio, and small negative Eu anomaly (Eu/Eu* 0.63–0.93). Overall, these trace element characteristics are consistent with a mafic source similar to the composition of basalt rocks in the erosional region on the western edge of the study area. In contrast, the tonsteins are low in V, Ti, Sc, Cr, Co and Ni contents and have a high Th/U ratio with a distinct negative Eu anomaly (Eu/Eu* normally in the range of 0.2–0.4), consistent with a silicic magmatic source.Within the group of tonsteins, those from the lower section (P2.1) of the coal-bearing formation are relatively high in Ti, Zr, Hf, Nb, Ta and rare earth elements (REE), as compared to those from the middle and upper sections (P2.2+3). In trace-element discrimination diagrams (scatter plots) of Hf–Ta, Ti–Ta, Ti–V, Hf–Sc, Lu–Hf and Lu–Th, tonsteins from the P2.1 horizon always fall in isolated distribution areas, separate from the tonsteins of the P2.2+3 horizon. These results suggest that the source materials of tonsteins from the two separate horizons were probably derived from volcanic ash falls of two distinctly different natures. Based on a comparison of the concentrations and assemblages of trace elements between various magmatic rocks, the source materials of tonsteins from P2.1 horizon were mostly composed of calc-alkalic, silica-poor volcanic ash (similar to rhyodacitic magma), whereas those from P2.2+3 were apparently more siliceous and K-rich (rhyolitic magma). Thus, tonsteins from the two different horizons are characterized by unique geochemical properties, which remain constant over a wide lateral extent. Integration of trace-elemental compositions with mineralogical and textural observations makes possible the establishment of tonstein stratigraphy, thus, facilitating more precise and reliable coal-seam correlations.  相似文献   
7.
无烟煤泥岩夹矸的岩石矿物学特征及其研究意义   总被引:2,自引:0,他引:2  
魏孔明 《矿物学报》2003,23(3):235-240
对山西晋城矿区3号无烟煤层进行了实地观测,采集了一定数量的标本,通过显微镜下鉴定、差热分析、X射线粉晶衍射分析、红外吸收光谱分析等一系列测试手段对无烟煤层中泥岩夹矸的岩石矿物学特征进行了研究,对其主要成分高岭石发生变化的主要原因及影响因素进行了探讨。结果发现,无烟煤层中泥岩夹矸的主要成分高岭石因受不同因素的影响而向不同方向发生转化,主要表现在高岭石向伊利石转化,并有伊利石-蒙脱石(I/S)混层矿物及蒙脱石出现。造成这种煤的变质程度升高而其夹矸成分转化的主要原因可能是区域变质作用及周围介质条件影响所致。  相似文献   
8.
煤系高岭岩的地球化学判别标志   总被引:7,自引:0,他引:7  
朱如凯 《地质论评》1997,43(2):121-130
本文主要研究了煤系高岭岩的微量、稀土、氧同位素地球化学特征。根据高岭岩产出层序、岩石学、矿物学、地球化学特征的研究,将煤系高岭岩分为两类:(1)铝土质高岭岩,微量元素含量、稀土总量,氧同位素值高,稀土配分模式与典型北美页岩相似,Eu负异常,反映其源岩为风化壳化学风化作用产物。(2)夹矸高岭岩,微量元素含量,稀土总量,氧同位素值低,稀土配分模式部分与典型北美页岩相似,反映其源岩与铝土质高岭岩类似;部  相似文献   
9.
鲁西南煤夹矸的矿物学特征研究及应用前景   总被引:3,自引:1,他引:3  
对鲁西南上石炭统11层煤和7层煤夹矸的化学成分和矿物学特征进行了研究,结果表明,这两层煤夹矸属于硬质高岭土,成分接近于纯净的高岭石,伴生有石英、黄铁矿、少量长石及微量锆石和磷灰石等矿物。光学及扫描电子显微镜、X射线衍射分析和红外分析等系统性研究的结果表明,高岭石主要有两种存在形式,一种呈蠕虫状集晶,另一种是隐晶质或胶状高岭石,测得其结晶指数分别为0.54—0.74和0.47—0.53,说明其有序度偏高;化学分析结果表明,其化学成分接近于高岭石的理论值,A1203含量达35%—37%,Si02含量为47%—48%,碱金属、碱土金属及其他氧化物含量很低。高岭石泥岩夹矸的矿物、化学成分及工艺物理性能表明:它是一种开采成本低、利用价值高的高岭土资源之一,不仅可作为优质陶瓷原料用来生产长石质瓷,也可用于生产聚合铝及4A分子筛,并且在矿物填料和其他工业部门也有广阔的开发应用前景。  相似文献   
10.
More than 3800 coal thickness measurements, proximate analyses from 97 localities, and stratigraphic and sedimentological analyses from more than 300 outcrops and cores were used in conjunction with previously reported palynological and petrographic studies to map individual benches of the coal and document bench-scale variability in the Fire Clay (Hazard No. 4) coal bed across a 1860 km2 area of the Eastern Kentucky Coal Field. The bench architecture of the Fire Clay coal bed consists of uncommon leader benches, a persistent but variable lower bench, a widespread, and generally thick upper bench, and local, variable rider benches. Rheotrophic conditions are inferred for the leader benches and lower bench based on sedimentological associations, mixed palynomorph assemblages, locally common cannel coal layers, and generally high ash yields. The lower bench consistently exhibits vertical variability in petrography and palynology that reflects changing trophic conditions as topographic depressions infilled. Infilling also led to unconfined flooding and ultimately the drowning of the lower bench mire. The drowned mire was covered by an air-fall volcanic-ash deposit, which produced the characteristic flint clay parting. The extent and uniform thickness of the parting suggests that the ash layer was deposited in water on a relatively flat surface without a thick canopy or extensive standing vegetation across most of the study area. Ash deposits led to regional ponding and establishment of a second planar mire. Because the topography had become a broadly uniform, nutrient-rich surface, upper-bench peats became widespread with large areas of the mire distant to clastic sources. Vertical sections of thick (>70 cm), low-ash yield, upper coal bench show a common palynomorph change from arborescent lycopod dominance upward to fern and densospore-producing, small lycopod dominance, inferred as a shift from planar to ombrotrophic mire phases. Domed mires appear to have been surrounded by wide areas of planar mires, where the coal was thinner (<70 cm), higher in ash yield, and dominated by arborescent lycopods. Rectangular thickness trends suggest that syndepositional faulting influenced peat accumulation, and possibly the position of the domed mire phase. Faulting also influenced post-depositional clastic environments of deposition, resulting in sandstone channels with angular changes in orientation. Channnels and lateral facies were locally draped by high-ash-yield rider coal benches, which sometimes merged with the upper coal bench. These arborescent-lycopod dominant rider coal benches were profoundly controlled by paleotopography, much like the leader coal benches. Each of the benches of coal documented here represent distinctly different mires that came together to form the Fire Clay coal bed, rather than a single mire periodically split by clastic influx. This is significant as each bench of the coal has its own characteristics, which contribute to the total coal characteristics. The large data set allows interpretation of both vertical and lateral limits to postulated domed phases in the upper coal bench, and to the delineation of subtle tectonic structures that allow for meaningful thickness projections beyond the limits of present mining.  相似文献   
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