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1.
页岩纳米级孔隙的三维结构特征直接决定页岩气微观渗流机理,是完善页岩储层流动模型亟需解决的核心问题。本文以龙马溪组页岩有机孔样品(直径约7μm)为研究对象,分别利用同步辐射纳米CT和实验室纳米CT重建有机孔三维空间结构,针对两个装置获得的孔隙结构参数进行对比研究,结果表明:(1)龙马溪组页岩有机孔样品呈蜂窝状,孔隙度约60%,连通性较好;孔径分布呈双峰模式,集中于60~150nm和500~1400 nm;孔径大于500 nm的孔隙对样品的总孔隙度贡献较大。(2)同步辐射纳米CT与实验室纳米CT结果相较,孔隙度和孔隙总数两参数基本一致,喉道总数和喉道半径偏差较大;孔径分布和配位数分布规律虽然类似,但具体数值存在明显差异,值得进一步深入比较分析和研究。(3)纳米CT方法在页岩纳米孔隙三维结构表征方面存在阈值划分难度大与扫描视场过小的问题,可从切片重构算法、三维数据处理、表征单元体三方面进行改进。  相似文献   

2.
页岩纳米级孔隙的三维结构特征直接决定页岩气微观渗流机理,是完善页岩储层流动模型亟需解决的核心问题。本文以龙马溪组页岩有机孔样品(直径约7μm)为研究对象,分别利用同步辐射纳米CT和实验室纳米CT重建有机孔三维空间结构,针对两个装置获得的孔隙结构参数进行对比研究,结果表明:(1)龙马溪组页岩有机孔样品呈蜂窝状,孔隙度约60%,连通性较好;孔径分布呈双峰模式,集中于60~150nm和500~1400nm;孔径大于500nm的孔隙对样品的总孔隙度贡献较大。(2)同步辐射纳米CT与实验室纳米CT结果相较,孔隙度和孔隙总数两参数基本一致,喉道总数和喉道半径偏差较大;孔径分布和配位数分布规律虽然类似,但具体数值存在明显差异,值得进一步深入比较分析和研究。(3)纳米CT方法在页岩纳米孔隙三维结构表征方面存在阈值划分难度大与扫描视场过小的问题,可从切片重构算法、三维数据处理、表征单元体三方面进行改进。  相似文献   

3.
页岩的矿物成分和孔隙特征对页岩气成藏和开采具有重要意义。四川盆地渝东石柱县打风坳地区五峰组-龙马溪组富有机质页岩广泛发育,应用X射线衍射技术对其矿物成分特征进行研究,发现五峰组-龙马溪组页岩矿物成分包含石英、长石、方解石、白云石、黄铁矿、伊利石、伊/蒙混层和绿泥石。脆性矿物含量(50%)和黏土矿物组合特征表明五峰组-龙马溪组是宜于页岩气形成与开采的有利层位。应用氩离子抛光-扫描电镜方法对页岩微纳孔隙特征展开研究,发现无机孔、微裂缝和有机孔3种孔隙类型。无机孔主要包括粒间孔、黄铁矿晶间孔、黏土矿物层间孔和溶蚀孔,孔径数百纳米至数微米;微裂缝包括构造裂缝和解理缝,缝长集中于3~10μm,缝宽数百纳米。有机孔主要发育在有机质内部,呈片麻状或蜂窝状,孔径30~200 nm,连通性较好。总体而言,五峰组页岩中最主要的孔隙类型是溶蚀孔,龙马溪组页岩中主要发育粒间孔和有机孔。  相似文献   

4.
以渝东南-黔北地区牛蹄塘组页岩岩心及野外新鲜露头样品为研究对象,运用低温液氮吸附实验和氩离子抛光扫描电镜观察,划分页岩微纳米级孔隙类型,并对其发育程度和形态结构进行定量表征,结合页岩样品地球化学测试数据,明确页岩微观孔隙发育主控因素,试图建立微纳米级孔隙发育程度与主控因素定性或半定量关系。结果表明:研究区牛蹄塘组页岩微纳米级孔隙分为有机孔、无机孔和微裂缝3大类,包括7个亚类。有机质粒内孔结构特征为球状、细瓶颈状和墨水瓶状,无机孔主要为串珠状、球状和楔状,微裂缝呈四方开口的平行板状、夹板状。有机质粒内孔、矿物粒间孔和微裂缝为主要孔隙类型,且具有较好连通性,可作为页岩气赋存空间和渗流通道。页岩孔隙以中孔为主,其次为宏孔,孔隙直径分布范围主要在1~50 nm。比表面积主要由孔径≤5 nm孔隙所提供,页岩孔隙孔径越小,对比表面积贡献越大,越有利于页岩气吸附聚集,随着孔隙体积的增加,比表面积不断增加。有机碳含量是控制页岩微纳米级孔隙发育和比表面积的最重要内因,特别体现在对微孔和中孔发育的控制上;黏土矿物含量增加能增强页岩吸附能力,但对孔隙体积和比表面积主控作用不明显;脆性矿物含量主要控制宏孔发育,对页岩吸附的贡献可以忽略;热演化程度过低或过高均不利于有机质孔隙的发育,微纳米孔隙体积随着成熟度增加呈现出先增后减的趋势,对于高过成熟页岩,不同干酪根类型的有机质孔隙发育程度和比表面积大小次序为Ⅰ型>Ⅱ型>Ⅲ型。  相似文献   

5.
中国油气储层中纳米孔首次发现及其科学价值   总被引:48,自引:2,他引:46  
油气储层孔隙可分为毫米级孔、微米级孔、纳米级孔3种类型,常规储层孔隙直径一般大于1μm。北美地区页岩气储层纳米级孔径范围为5~160nm,主体为80~100nm。在对中国非常规油气储层研究中,应用场发射扫锚电子显微镜与纳米CT重构技术,首次发现了小于1μm的油气纳米孔。其中,致密砂岩油气储层中纳米级孔隙以颗粒内孔、自生矿物晶间孔及微裂缝为主,喉道呈席状、弯曲片状,孔隙直径范围10~1000nm,主体为300~900nm;页岩气储层纳米级孔隙以有机质内孔、颗粒内孔及自生矿物晶间孔为主,孔隙直径范围5~300nm,主体为80~200nm。纳米级孔是致密储层连通性储集空间的主体。纳米级孔隙系统的发现,改变了微米级孔隙是油气储层唯一微观孔隙的传统认识,为认识常规油气局部富集,非常规油气连续聚集的地质特征、研究连续型油气聚集机理、增加资源潜力具有重要的科学意义。  相似文献   

6.
为了深入研究四川盆地上三叠统须五段陆相页岩储层微观孔隙结构,运用氩离子抛光扫描电镜(SEM)、低温氮气吸脱附以及相关地球化学分析实验等技术对该地区页岩储层的微观孔隙结构进行了研究,并对控制其纳米孔隙发育的主要因素进行了探讨。结果表明:四川盆地须五段页岩微观孔隙可分为有机孔和无机孔(粒间孔、粒内孔、晶间孔、溶蚀孔),微裂缝可分为构造微裂缝、有机质生排烃缝和成岩收缩缝等;孔隙结构类型以两端连通的圆柱孔、平行平面间的缝状孔和呈锥形的管孔为主;微观孔隙孔径分布区间大(1~80 nm),峰值主要集中于2~8 nm之间;以中孔(2~50 nm)为主,所占比例为6021%(或以黏土矿物孔为主,所占比例为4462%);页岩的有机质丰度和黏土矿物含量是控制纳米孔隙发育的主要因素。  相似文献   

7.
徐祖新  郭少斌 《现代地质》2015,29(1):206-212
通过氩离子抛光-SEM技术,分析了中扬子地区震旦系陡山沱组页岩储层孔隙类型、孔隙形态、孔径和面孔率特征,探讨了这些孔隙的油气地质意义。研究认为,陡山沱组页岩储层发育有机质孔隙、粒间孔隙、粒内孔隙和微裂缝4种孔隙类型。页岩孔隙形态可分为不规则多边形孔、圆形或椭圆形孔、复杂网状孔、串珠状孔、长条形孔、线状孔6种类型,其中复杂网状孔的连通性最好,有利于压差传递,可提高页岩气的解吸效率和储层的渗透率。页岩孔径为10~2 000 nm,主体范围为20~200 nm,平均面孔率为1.4%~6.2%。不同类型的孔隙能够为页岩气的赋存提供不同尺度的储集空间,微裂缝和粒间孔隙对页岩气的运移最为有利。  相似文献   

8.
通过加水的高温高压热模拟实验对鄂尔多斯盆地延长组长7段陆相低熟油页岩进行地质条件约束下的模拟,获得不同热演化程度的页岩样品,并对其孔隙特征及纳米级孔隙的分布进行研究。结果表明,原始样品微孔隙类型主要有原生残留孔隙、次生溶蚀孔隙、黏土矿物粒间孔和黄铁矿晶间孔,及一些表生作用形成的收缩孔,其中一些孔隙被残留烃所充填。随着温、压的升高,有机质孔开始发育,样品孔隙度呈现出先增加后减小的演化规律,从原始样品的3.8%升高至350℃、32.5 MPa的17.53%后又逐渐降低,370℃、42.9 MPa时为8.15%,孔径峰值从20~100nm变为2~10nm,尔后又升至20~200nm,页岩孔隙度的增加主要是有机孔的贡献。低熟阶段样品中有机质纳米级孔隙发育有限,而是多在有机质与骨架颗粒接触边缘发育长条形、狭缝状的孔隙。随着成熟度的升高,在有机质内部开始出现孔隙,黏土颗粒间的有机质也开始分解,出现纳米级层间孔。随温度、压力的继续增大,压实作用、矿物相变及有机孔形成速度减缓的共同作用而减孔显著,岩样孔隙度减小幅度达5.68%,因此对于富有机质页岩来说,深埋阶段压实作用不容小视。  相似文献   

9.
复杂储层岩石矿物组成非均质性强,孔喉结构细小.储集空间有效性评价、岩石结构精细评价及流体赋存状态与运移规律评价是决定复杂储层油气勘探成效的关键.针对复杂储层的储集空间(孔喉、裂缝)、岩石结构(矿物、有机质)、流体特征3方面,建立了复杂储层多尺度数字岩石评价技术及工作流程.储集空间表征方面:二维大面积分析技术可建立跨越6~7个数量级的多尺度选取及非均质性评价;多尺度CT及FIB-SEM联用可精确刻画孔喉和裂缝的三维空间分布;电化学和显影剂技术可以有效地帮助分析微观孔隙连通性.固体组分分析方面:XRF及Qemscan联用可定量评价矿物组成与分布;三维FIB-SEM技术可以实现有机质形态和分布的定量分析.流体特性方面:荷电效应可用于微量残留有机流体的识别与表征;通过合成孔径、润湿性、表面微结构均可调控的纳米材料,开展地层条件下页岩油赋存及流动物理模拟研究,确定了单一因素对页岩油赋存及可动孔径下限的影响;利用分子模拟研究油气在无机、有机质纳米孔隙中的聚集机理与扩散潜力.复杂储层多尺度数字岩石评价技术体系和一系列具体应用可以有效地填补常规储层分析手段的不足,为页岩油气、致密砂岩油气储层以及深部油气储层等复杂储层有效性评价和含油气性定量评价提供技术支撑.   相似文献   

10.
分形维数可定量表征储层孔隙结构的复杂性,为页岩储层评价提供思路。以热模拟获得的不同热演化阶段的鄂尔多斯盆地长7段页岩为研究对象,应用场发射扫描电镜观察了各演化阶段孔隙变化特征,并通过低温液氮吸附实验,研究各个演化阶段页岩孔隙分形特征,运用FHH模型计算页岩孔隙分形维数,探讨了分形维数与有机碳、矿物成分、孔隙结构参数的关系。研究结果表明:低成熟阶段页岩中纳米级有机质孔发育有限,随着成熟度的增加,在有机质内部开始逐渐发育孔隙,同时黏土矿物颗粒间的有机质也开始分解,出现纳米级层间孔,主要发育墨水瓶状孔和少部分的平行板状孔;孔径峰值主要在2~4 nm和40~50 nm,随着成熟度增加,上述2个孔径段的孔隙相对数量增加,分形维数依次增大,分形维数为2.592~2.717,孔隙非均质性增强。分形维数随着有机碳含量的减少而增加,而与石英、黏土矿物含量相关性不明显;随着成熟度增加,微孔和中孔比例增加,平均孔径减小,孔隙表面越复杂,比表面积和分形维数增加;分形维数与总孔隙体积、微孔体积、中孔体积具有很好的正相关性,而与大孔体积相关性较差。   相似文献   

11.
A key target of shale gas exploration and production in China is the organic-rich black shale of the Wufeng Formation-Longmaxi Formation in the Sichuan Basin and its periphery. The set of black shale contains abundant graptolites, which are mainly preserved as flattened rhabdosomes with carbonized periderms, is an important organic component of the shale. However, few previous studies had focused on the organic matter (OM) which is derived from graptolite and its pore structure. In particular, the contributions of graptolites to gas generation, storage, and flow have not yet been examined. In this study, focused ion beam-scanning electron microscope (FIB-SEM) was used to investigate the characteristics of the graptolite-derived OM and the micro-nanopores of graptolite periderms. The results suggested that the proportion of OM in the graptolite was between 19.7% and 30.2%, and between 8.9% and 14.4% in the surrounding rock. The total organic carbon (TOC) content of the graptolite was found to be higher than that of the surrounding rock, which indicated that the graptolite played a significant role in the dispersed organic matter. Four types of pores were developed in the graptolite periderm, including organic gas pores, pyrite moulage pores, authigenic quartz moldic pores, and micro-fractures. These well-developed micro-nano pores and fractures had formed an interconnected system within the graptolites which provided storage spaces for shale gas. The stacked layers and large accumulation of graptolites resulted in lamellation fractures openning easily, and provided effective pathways for the gas flow. A few nanoscale gas pores were observed in the graptolite-derived OM, with surface porosity lie in 1.5%–2.4%, and pore diameters of 5–20 nm. The sapropel detritus was determined to be rich in nanometer-sized pores with surface porosity of 3.1%–6.2%, and pore diameters of 20–80 nm. Due to the small amount of hydrocarbon generation of the graptolite, supporting the overlying pressure was difficult, which caused the pores to become compacted or collapsed.  相似文献   

12.
In organic-rich gas shales, clay minerals and organic matter (OM) have significant influences on the origin, preservation, and production of shale gas. Because of the substantial role of nanoscale pores in the generation, storage, and seepage of shale gas, we examined the effects of clay minerals and OM on nanoscale pore distribution characteristics in Lower Paleozoic shale gas reservoirs. Using the Niutitang and Longmaxi shales as examples, we determined the effects of clay minerals and OM on pores through sedimentation experiments. Field emission–scanning electron microscopy combined with low-pressure N2 adsorption of the samples before and after sedimentation showed significant differences in pore location and pore size distribution between the Niutitang and Longmaxi shales. Nanoscale pores mostly existed in OM in the Longmaxi shale and in clay minerals or OM–clay composites in the Niutitang shale. The distribution differences were attributed largely to variability in thermal evolution and tectonic development and might account for the difference in gas-bearing capacity between the Niutitang and Longmaxi reservoirs. In the nanoscale range, mesopores accounted for 61–76% of total nanoscale pore volume. Considerably developed nanoscale pores in OM were distributed in a broad size range in the Longmaxi shale, which led to good pore connectivity and gas production. Numerous narrow pores (i.e., pores?<?20 nm) in OM–clay composites were found in the Niutitang shale, and might account for this shale’s poor pore connectivity and low gas production efficiency. Enhancing the connectivity of the mesopores (especially pores?<?20 nm and those developed in OM–clay composites) might be the key to improving development of the Niutitang shale. The findings provide new insight into the formation and evolutionary mechanism of nanoscale pores developed in OM and clay minerals.  相似文献   

13.
为了揭示鄂尔多斯盆地东缘海陆过渡相页岩微观孔隙结构特征及其主控因素,丰富对该区块海陆过渡相煤系页岩孔隙发育特征与孔隙结构的认识,对临兴地区页岩进行扫描电镜、高压压汞和液氮吸附分析以表征微观孔隙结构特征,同时结合孔隙率、TOC含量、岩石矿物含量、黏土相对含量、有机质成熟度测试结果对页岩孔隙结构发育主控因素进行研究。结果表明:研究区页岩发育粒内孔、粒间孔、溶蚀孔和微裂缝,有机质内部偶见孔隙、可见微裂隙,与矿物伴生时周边发育微裂隙;页岩总孔容介于0.001 46~0.010 81 mL/g,介孔占比81.9%,比表面积介于0.35~ 3.65 m2/g,孔径分布以单峰型为主,分布范围主要在200 nm以内,主峰孔径在45 nm左右,本溪组、太原组页岩孔隙连通性优于山西组,太原组宏孔占比优于本溪组、山西组;页岩总有机碳含量对页岩孔隙发育的影响复杂,对宏孔发育具有一定的积极作用,脆性矿物含量对总孔、介孔发育有积极作用,黏土矿物含量对总孔和介孔发育起消极作用,其中,脆性矿物和黏土矿物通过影响介孔的发育来控制页岩中孔隙的发育程度。基于页岩孔隙结构多尺度定性–定量表征及其控制因素研究对临兴区块海陆过渡相页岩气资源量评价、甜点优选与开发具有重要指导意义,丰富了对海陆过渡相页岩储层的地质认识。   相似文献   

14.
为了评价陆相页岩气储层的储集空间和储气能力,以鄂尔多斯盆地延长探区上三叠统延长组长7段、长9段页岩为研究对象,运用电子扫描显微镜、高压压汞、低温CO2和N2气体吸附等实验方法,对陆相页岩气储层孔隙类型特征、孔隙结构及其影响因素进行研究。结果表明:(1)延长探区上三叠统延长组陆相页岩发育多种类型微观孔隙,以粒间孔和粒内孔为主,少量晶间孔和溶蚀孔,有机质孔发育较少,为陆相页岩气赋存提供了储集空间;(2)延长组页岩中介孔(2~50 nm)贡献了其主要的孔容和比表面积,占总孔容的7437%,占总比表面积的6440%,且长9段页岩的总孔容和总比表面积均大于长7段页岩;(3)延长组页岩孔隙结构以狭缝型孔和板状孔为主,孔径主要分布在04~09 nm、3~25 nm和5~200 μm区间段内,延长组页岩平均孔径为853 nm,且长7段页岩平均孔径大于长9段页岩;(4)页岩有机碳含量、有机质成熟度及矿物成分含量共同影响着延长组页岩孔隙的发育,其中矿物成分含量是以介孔孔隙为主的延长组页岩孔隙发育的主控因素,有机碳含量及成熟度的增加主要对页岩中微孔孔隙的发育起到积极作用。  相似文献   

15.
鄂尔多斯盆地上三叠统长7段泥页岩储集性能   总被引:2,自引:0,他引:2       下载免费PDF全文
页岩气的成功勘探开发引发了全球海相页岩研究的热潮, 然而对处于生油窗内的陆相页岩储集性能的研究尚需加强.基于光学薄片、场发射扫描电镜、环境扫描电镜、纳米CT、图像分析、GRI物性、气体吸附等方法对长7段泥页岩储集性能进行系统研究.结果表明: 长7段泥页岩形成于陆相半深湖-深湖环境, 面积为10×104 km2, TOC>2%, Ro=0.8%~1.0%, HI=124~480 mg/g, 生烃潜力高; 脆性矿物含量为45%~59%, 孔隙度为0.6%~3.8%, 渗透率为0.000 72×10-3~0.002 30×10-3 μm2; 主要发育粒内孔、粒间孔和有机质孔, 以伊蒙混层等粘土矿物粒内孔为主, 有机质孔较少; 孔隙直径为30~200 nm, 孔喉系统连通性中等, 具备储集能力; 伊蒙混层等粘土矿物含量与比孔容相关性优于热演化程度与烃指数等, 表明长7页岩微观孔隙主要受控于成岩作用, 有机质生烃作用对储集空间贡献相对较小; 滞留烃主要以吸附态和游离态存在于黄铁矿晶间孔、伊蒙混层粒内孔、伊利石粒内孔与长石粒间孔.   相似文献   

16.
Knowledge of pore structure and adsorption capacity provides guidance for better studying the origin, hydrocarbon distribution, and productivity of shale gas reservoir. In this study, pore structure characteristics of six shale core plugs with different maturity from the Lower Silurian Longmaxi formation in south China were investigated using the Rock-eval analysis, X-ray diffraction, total organic carbon (TOC) content test, and scanning electron microscope (SEM) observation. To further investigate the influence of maturity, the adsorption behavior of gas shale was experimentally measured, with the maximal pressure being 20 MPa. Rock-eval analysis indicates that Ro is 0.67~1.34%. SEM results show that organic matter (OM) pores are abundant in high-maturity shale sample. The OM pores are mainly irregular to elliptical in shape, the size is 8~100 nm. The TOC content is 0.16~4.21% and shows a positive correlation with the BET surface area. A negative relationship exists between TOC content and average pore diameter, which indicates that abundant nanometer pores are related to the OM. A noticeable characteristic in the pore size distribution curve is that the content of micropores (pore width <?2 nm) increases with the increasing TOC content. Additionally, the thermal maturity results in significant difference in methane adsorption capacity. Maximal adsorption capacity of shale samples is also lineally correlated with TOC content, which increases with maturity. This study provides a quantitative understanding of how maturity affects pore structure and adsorption behavior of shale gas reservoir.  相似文献   

17.
The Songliao Basin is one of the most important petroliferous basins in northern China. With a recent gradual decline in conventional oil production in the basin, the exploration and development of unconventional resources are becoming increasingly urgent. The Qingshankou Formation consists of typical Upper Cretaceous continental strata, and represents a promising and practical replacement resource for shale oil in the Songliao Basin. Previous studies have shown that low-mature to mature Qingshankou shale mainly preserves type Ⅰ and type Ⅱ1 organic matter, with relatively high total organic carbon(TOC) content. It is estimated that there is a great potential to explore for shale oil resources in the Qingshankou Formation in this basin. However, not enough systematic research has been conducted on pore characteristics and their main controlling factors in this lacustrine shale reservoir. In this study, 19 Qingshankou shales from two wells drilled in the study area were tested and analyzed for mineral composition, pore distribution and feature evolution using Xray diffraction(XRD), scanning electron microscopy(SEM), low-pressure nitrogen gas adsorption(N2-GA), and thermal simulation experiments. The XRD results show that clay, quartz, and feldspar are the dominant mineral constituents of Qingshankou shale. The clay minerals are mostly illite/smectite mixed layers with a mean content of 83.5%, followed by illite, chlorite, and kaolinite. There are abundant deposits of clay-rich shale in the Qingshankou Formation in the study area, within which many mineral and organic matter pores were observed using SEM. Mineral pores contribute the most to shale porosity;specifically, clay mineral pores and carbonate pores comprise most of the mineral pores in the shale. Among the three types of organic matter pores, type B is more dominant the other two. Pores with diameters greater than 10 nm supply the main pore volume;most are half-open slits and wedge-shaped pores. The total pore volume had no obvious linear relationship with TOC content, but had some degree of positive correlation with the content of quartz + feldspar and clay minerals respectively. However, it was negatively correlated with carbonate mineral content. The specific surface area of the pores is negatively related to TOC content, average pore diameter, and carbonate mineral content. Moreover, it had a somewhat positive correlation with clay mineral content and no clear linear relationship with the content of quartz + feldspar. With increases in maturity, there was also an increase in the number of carbonate mineral dissolution pores and organic matter pores, average pore diameter, and pore volume, whereas there was a decrease in specific surface area of the pores. Generally, the Qingshankou shale is at a low-mature to mature stage with a TOC content of more than 1.0%, and could be as thick as 250 m in the study area. Pores with diameters of more than 10 nm are well-developed in the shale. This research illustrates that there are favorable conditions for shale oil occurrence and enrichment in the Qingshankou shale in the study area.  相似文献   

18.
王朋飞  姜振学  金璨  吕鹏  李鑫  张昆  王凯  黄璞 《现代地质》2019,33(4):902-910
页岩中的有机质孔隙对烃类气体的赋存至关重要。为了明确渝东南下志留统龙马溪组页岩的有机质孔隙发育特征,使用聚焦离子束氦离子显微镜(FIB-HIM)技术进行观察。FIB-HIM具有极高的分辨率,分辨精度可达到亚纳米级,能够有效识别直径为0~20 nm的孔隙。结果表明:龙马溪组页岩的焦沥青内部发育大量的有机质孔隙,孔隙直径大,连通性好,大量较小直径的孔隙嵌套在直径较大的有机质孔隙中,增加了页岩有机质孔隙系统的比表面积和孔隙连通性,有利于烃类气体在页岩有机质孔隙内的赋存及有效渗流。龙马溪组页岩的固体干酪根内部有机质孔隙的发育特征与焦沥青相比存在较大差别,固体干酪根内部发育的有机质孔隙数量少,孔隙直径小,连通性差,孔隙多呈孤立状存在于固体干酪根内部。  相似文献   

19.
为了评估下扬子皖南地区古生界页岩气储层性质,应用扫描电子显微镜、高压压汞法、N2和CO2气体吸附法,对皖南地区古生界页岩孔隙特征和孔隙结构进行研究,并探讨页岩孔隙发育的主要影响因素。结果表明,皖南地区古生界页岩孔隙度和渗透率低,页岩样品中常见粒间孔、凝絮孔、溶蚀孔、基质晶间孔和有机质孔,并且发育微米-纳米级孔隙。古生界页岩孔隙中50%以上为微孔和介孔;孔隙结构主要为圆柱孔、狭缝型孔和混合型孔,平均孔径范围为4.17~12.06 nm。页岩孔容和比表面积随着有机碳(TOC)含量的增大而增大;页岩孔隙度随着有机质成熟度(Ro)的增大而减小;页岩孔容随着黏土矿物含量的增加而增大,随着脆性矿物含量的增加而减小。  相似文献   

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