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1.
南海北部陆坡区具备天然气水合物形成聚集的地质条件,神狐海域的海底沉积层温度和压力条件符合水合物成藏的要求;源岩生烃潜力巨大且烃类运移条件良好,可以为水合物成藏提供充足的气源和通畅的运移通道。然而,钻探结果揭示了神狐海域天然气水合物在相似地质背景地区聚集分布的差异性,其机理及控制因素并不清楚。基于研究区8口钻探井的成藏地质条件,综合对比分析了成功获取及未获取水合物站位处的地震、测井、钻井、地球化学等数据,并以此探究南海北部神狐地区天然气水合物分布不均匀性的控制和影响因素。  相似文献   

2.
中国海域天然气水合物资源远景   总被引:3,自引:0,他引:3  
南海东北部活动陆缘和北部被动陆缘以及东海冲绳海槽南部具有形成天然气水合物的良好成矿条件。从水深来看,上述3个有代表性的地区最小水深都在300m以上,有利于水合物的稳定存在;从沉积厚度和沉积速率来看,上述3个地区新生代地层厚度一般都在3000~6000m,有利于提供水合物形成所需的充足气源;从地球物理、地球化学等调查结果来看,上述3个地区普遍存在重要的地球标志——似海底反射BSR等,以及重要的地球化学标志——底水甲烷异常、孔隙水氯异常等。通过对上述海区的区域地质条件、地球物理和地球化学异常的综合分析认为,上述3个地区可能更适宜水合物的形成和聚集,因而可能会有很好的远景。  相似文献   

3.
天然气水合物是近三十多年重视起来的一种新型能源,被誉为21世纪洁净替代燃料,已逐步引起越来越多国家政府、企业、科学家的广泛关注和高度重视。以南海北部陆坡作为研究案例,充分利用我国海域天然气水合物调查评价和钻探工程资料的优势,重点开展天然气水合物成藏机理和分布规律理论研究,通过成藏理论创新,提高成藏预测能力,具有重要的科学意义和应用价值。 围绕海洋天然气水合物成藏系统,国际上在物质来源及成因机理、物理化学特征、形成环境及成藏模式、分布规律和资源评价等方面取得了显著进展。我国南海北部陆坡天然气水合物调查评价发现了一系列天然气水合物存在的地质、地球物理、地球化学和生物证据,钻探发现并取得了天然气水合物实物样品,但尚有许多关键科学问题需要解决,包括天然气水合物成藏系统中气、水、沉积物和水合物间的相互作用,天然气水合物的物理、化学响应机理及构造运动和沉积作用对我国海域天然气水合物的控矿机理等。  相似文献   

4.
南海北部神狐海域天然气水合物形成及分布的地质因素   总被引:6,自引:0,他引:6  
从天然气水合物发育的地质构造条件、沉积条件、气源条件、温压条件等分析了神狐海域影响水合物形成及分布的地质因素.指出神狐海域处在洋陆壳的过渡带上,断裂-褶皱构造及流体底辟构造发育,对水合物的形成具有重要的控制作用.受等深流和海底滑塌双重作用,研究区沉积异常体发育,沉积厚度大、沉积速率高,有利于水合物发育.通过对神狐海域附近钻探结果及区内地质调查站位资料的分析表明:目标区具有含巨量的生物气和热成因气资源潜力,具备形成天然气水合物的气源条件,气源为文昌-恩平组烃源岩.此外,受热流值北高南低的分布格局的影响,神狐海域BSR埋深也表现为北部浅南部深,且BSR分布区整体处在天然气水合物稳定存在的温压范围内,满足水合物形成及保存所需的温压条件.神狐海域的地质构造条件、沉积特征、气源条件、温压条件等都非常有利于天然气水合物发育.  相似文献   

5.
南海东沙海域天然气水合物与地质构造的关系   总被引:4,自引:0,他引:4  
构造作用和构造过程是控制天然气水合物发育和赋存的重要地质因素之一。陆坡区复杂的构造运动能够形成良好的气体运移通道以及欠压实、高孔隙的水合物储集空间。东沙群岛邻近海域具有水深变化大、沉积厚度大、沉积速率高和有机质丰富等天然气水合物有利赋存条件,最新的研究已经在该海域发现了天然气水合物赋存的地球物理证据BSR,针对东沙群岛海域广泛发育的断裂、底辟、海底滑坡等构造,开展了其与天然气水合物成藏的关系研究,可以进一步深入了解天然气水合物在东沙群岛不同地质构造中的分布特征与演化,为该区天然气远景评估提供参考。  相似文献   

6.
总结分析了地质大调查、国家天然气水合物专项有关我国东海天然气水合物形成条件、成矿地质背景及天然气水合物地震反射和资源潜力分布等的特征,指出我国天然气水合物资源潜力巨大,当前主要任务是在合适的海域获得天然气水合物实物样品,并确定我国海域天然气水合物聚集地。  相似文献   

7.
南沙海洋柱状沉积物的有机地球化学研究   总被引:6,自引:1,他引:6  
段毅  徐雁前 《海洋通报》1996,15(4):42-48
研究了南沙海域NS90-103柱样有机碳含量,各类生物标志化合物的组成和分布及其地球化学意义。结果表明,该柱样中有机碳含量高于南沙海域其他沉积环境,这表明南沙海域中大陆坡最适合于有机质的聚集。各类生物标志化合物组成和分布指示了沉积有机质主要起源于海洋浮游生牧细菌,其次为陆源高等植物,气溶胶输入可能是后者来源的途径之一;沉积环境具有强原还性;有机质处于未成熟阶段,并存在较好的成岩变化。  相似文献   

8.
我国南海北部陆坡是天然气水合物发育的理想场所。近年来,在中国地质调查局统一组织下,广州海洋地质调查局经过9年的调查研究,发现了天然气水合物赋存的地质、地球物理、地球化学和生物证据,圈定了有利远景区,初步评价认为南海北部具有良好的天然气水合物资源前景,并于2007年5~6月经钻探在南海北部神狐海域获取了天然气水合物的岩心样品。  相似文献   

9.
通过对南海北部陆缘珠江口和琼东南盆地气田的天然气形成水合物的地球化学计算模拟及地质地球化学条件分析,对珠江口和琼东南盆地天然气形成水合物的地球化学边界条件及分布区进行了研究。认识到南海北部陆缘琼东南和珠江口盆地内的断裂构造是天然气向海底渗漏的通道,为天然气水合物在海底的形成提供了物源;盆地内巨厚的第四纪富有机质沉积也为天然气水合物形成提供了充足的细菌成因生物气源。在海底温度2-16℃范围内,琼东南盆地气田10种天然气和珠江口盆地气田18种天然气形成水合物的压力有比较大的范围,随温度增高,天然气水合物形成的压力增高;盆地间和各天然气样品之间形成水合物的压力均是不一致的。在南海海水平均盐度3.4%条件下,结合海底温度与水深变化资料,珠江口和琼东南盆地天然气水合物形成和稳定分布的海区是不同的,珠江口盆地小于230m水深的海区没有天然气水合物的形成,在230-760m水深的海区可能有天然气水合物的存在,天然气水合物的稳定分布区应该在大于860m水深的深水区;在琼东南盆地水深小于320m的海区不可能有天然气水合物的形成,在320-650m水深的海区可能有天然气水合物的存在,大于650m水深的海区是天然气水合物的稳定分布区。  相似文献   

10.
南沙海域石油地质概况   总被引:2,自引:0,他引:2  
本文通过对万安、曾母等9个盆地有关油气地质特征的综合分析,认为南沙海域新生代沉积盆地十分发育,具有较好的生烃条件,多层位、多类型的油气储集岩,丰富多彩的圈闭类型,短距离的油气运移和良好的盖层及保存条件.其中,曾母、沙巴-文莱和万安盆地均具有良好的油气地质杂件,蕴藏着丰富的油气资源.  相似文献   

11.
南海北部陆坡深水区的浅层天然气藏是一种伴随天然气水合物的新型油气藏, 具有埋藏浅、规模大的特点, 其埋藏深度一般小于300m。浅层天然气藏由深部裂解气沿断裂上升被天然气水合物封盖而形成, 识别似海底反射(BSR)是寻找浅层天然气藏有效方法。浅层天然气藏的气源主要有热解气、生物气和混合气, 陆坡张性断裂是气体运移的主要通道, 水合物下部的砂层是浅层天然气藏的主要储集层, 水合物层则是封盖层。从南海发现的天然气水合物分布特征看, 浅层天然气藏在陆坡深水区广泛分布且气藏厚度大, 潜在资源量非常可观, 是一种新型的开采成本相对低廉的油气藏。  相似文献   

12.
This study is a synthesis of gas-related features in recent sediments across the western Black Sea basin. The investigation is based on an extensive seismic dataset, and integrates published information from previous local studies. Our data reveal widespread occurrences of seismic facies indicating free gas in sediments and gas escape in the water column. The presence of gas hydrates is inferred from bottom-simulating reflections (BSRs). The distribution of the gas facies shows (1) major gas accumulations close to the seafloor in the coastal area and along the shelfbreak, (2) ubiquitous gas migration from the deeper subsurface on the shelf and (3) gas hydrate occurrences on the lower slope (below 750 m water depth). The coastal and shelfbreak shallow gas areas correspond to the highstand and lowstand depocentres, respectively. Gas in these areas most likely results from in situ degradation of biogenic methane, probably with a contribution of deep gas in the shelfbreak accumulation. On the western shelf, vertical gas migration appears to originate from a source of Eocene age or older and, in some cases, it is clearly related to known deep oil and gas fields. Gas release at the seafloor is abundant at water depths shallower than 725 m, which corresponds to the minimum theoretical depth for methane hydrate stability, but occurs only exceptionally at water depths where hydrates can form. As such, gas entering the hydrate stability field appears to form hydrates, acting as a buffer for gas migration towards the seafloor and subsequent escape.  相似文献   

13.
Muri Basin in the Qilian Mountain is the only permafrost area in China where gas hydrate samples have been obtained through scientific drilling. Fracture-filling hydrate is the main type of gas hydrate found in the Qilian Mountain permafrost. Most of gas hydrate samples had been found in a thin-layer-like, flake and block group in a fracture of Jurassic mudstone and oil shale, although some pore-filling hydrate was found in porous sandstone. The mechanism for gas hydrate formation in the Qilian Mountain permafrost is as follows: gas generation from source rock was controlled by tectonic subsidence and uplift--gas migration and accumulation was controlled by fault and tight formation--gas hydrate formation and accumulation was controlled by permafrost. Some control factors for gas hydrate formation in the Qilian Mountain permafrost were analyzed and validated through numerical analysis and laboratory experiments. CSMGem was used to estimate the gas hydrate stability zone in the Qilian permafrost at a depth of 100–400 m. This method was used to analyze the gas composition of gas hydrate to determine the gas composition before gas hydrate formation. When the overlying formation of gas accumulation zone had a permeability of 0.05 × 10−15 m2 and water saturation of more than 0.8, gas from deep source rocks was sealed up to form the gas accumulation zone. Fracture-filling hydrate was formed in the overlap area of gas hydrate stability zone and gas accumulation zone. The experimental results showed that the lithology of reservoir played a key role in controlling the occurrence and distribution of gas hydrate in the Qilian Mountain permafrost.  相似文献   

14.
珠江口盆地神狐海域是天然气水合物钻探和试验开采的重点区域,大量钻探取心、测井与地震等综合分析表明不同站位水合物的饱和度、厚度与气源条件存在差异。本文利用天然气水合物调查及深水油气勘探所采集的测井和地震资料建立地质模型,利用PetroMod软件模拟地层的温度场、有机质成熟度、烃源岩生烃量、流体运移路径以及不同烃源岩影响下的水合物饱和度,结果表明:生物成因气分布在海底以下1500 m范围内的有机质未成熟地层,而热成因气分布在深度超过2300 m的成熟、过成熟地层。水合物稳定带内生烃量难以形成水合物,形成水合物气源主要来自于稳定带下方向上运移的生物与热成因气。模拟结果与测井结果对比分析表明,稳定带下部生物成因气能形成的水合物饱和度约为10%,在峡谷脊部的局部区域饱和度较高;相对高饱和度(>40%)水合物形成与文昌组、恩平组的热成因气沿断裂、气烟囱等流体运移通道幕式释放密切相关,W19井形成较高饱和度水合物的甲烷气体中热成因气占比达80%,W17井热成因气占比为73%,而SH2井主要以生物成因为主,因此,不同站位甲烷气体来源占比不同。  相似文献   

15.
2D and 3D seismic reflection and well log data from Andaman deep water basin are analyzed to investigate geophysical evidence related to gas hydrate accumulation and saturation. Analysis of seismic data reveals the presence of a bottom simulating reflector (BSR) in the area showing all the characteristics of a classical BSR associated with gas hydrate accumulation. Double BSRs are also observed on some seismic sections of area (Area B) that suggest substantial changes in pressure–temperature (P–T) conditions in the past. The manifestation of changes in P–T conditions can also be marked by the varying gas hydrate stability zone thickness (200–650 m) in the area. The 3D seismic data of Area B located in the ponded fill, west of Alcock Rise has been pre-stack depth migrated. A significant velocity inversion across the BSR (1,950–1,650 m/s) has been observed on the velocity model obtained from pre-stack depth migration. The areas with low velocity of the order of 1,450 m/s below the BSR and high amplitudes indicate presence of dissociated or free gas beneath the hydrate layer. The amplitude variation with offset analysis of BSR depicts increase in amplitude with offset, a similar trend as observed for the BSR associated with the gas hydrate accumulations. The presence of gas hydrate shown by logging results from a drilled well for hydrocarbon exploration in Area B, where gas hydrate deposit was predicted from seismic evidence, validate our findings. The base of the hydrate layer derived from the resistivity and acoustic transit-time logs is in agreement with the depth of hydrate layer interpreted from the pre-stack depth migrated seismic section. The resistivity and acoustic transit-time logs indicate 30-m-thick hydrate layer at the depth interval of 1,865–1,895 m with 30 % hydrate saturation. The total hydrate bound gas in Area B is estimated to be 1.8 × 1010 m3, which is comparable (by volume) to the reserves in major conventional gas fields.  相似文献   

16.
南海北部天然气水合物研究进展   总被引:11,自引:0,他引:11  
天然气水合物是一种新型的储量巨大的绿色能源,是目前世界各国研究界的研究热点之一。我国以及美国、日本、印度、韩国等国家都采集到了天然气水合物的实物样品。虽然我国对天然气水合物的研究起步较晚,但近年来的研究已经取得了飞速的进步,而且也于2007年5月在南海北部陆坡的神狐海域成功采集到天然气水合物的实物样品,这是在南海海域首次获取天然气水合物实物样品,证实了南海北部蕴藏着丰富的天然气水合物资源,标志着我国天然气水合物调查研究水平又上了一个新的台阶。目前,南海北部陆坡已经作为我国天然气水合物未来开发的战略选区之一。在总结我国天然气水合物以往十几年研究工作的基础上,综述了我国天然气水合物近年来在南海北部的地质、地球物理、地球化学3个方面的研究进展,提出了未来天然气水合物勘探和研究的方向和建议。  相似文献   

17.
The presence of gas hydrates, one of the new alternative energy resources for the future, along the Indian continental margins has been inferred mainly from bottom simulating reflectors (BSR) and the gas stability zone thickness mapping. Gas hydrate reserves in Krishna Godawari Basin have been established with the help of gas-hydrate related proxies inferred from multidisciplinary investigations. In the present study, an analysis of 3D seismic data of nearly 3,420 km2 area of Mahanadi deep water basin was performed in search of seismic proxies related with the existence of natural gas hydrate in the region. Analysis depicts the presence of BSR-like features over a large areal extent of nearly 250 km2 in the central western part of the basin, which exhibit all characteristics of a classical BSR associated with gas hydrate accumulation in a region. The observed BSR is present in a specific area restricted to a structural low at the Neogene level. The coherency inversion of pre-stack time migration (PSTM) gathers shows definite inversion of interval velocity across the BSR interface which indicates hydrate bearing sediments overlying the free gas bearing sediments. The amplitude versus offset analysis of PSTM gathers shows increase of amplitude with offset, a common trend as observed in BSR associated with gas hydrate accumulation. Results suggest the possibility of gas hydrate accumulation in the central part of the basin specifically in the area of structural low at the Neogene level. These results would serve as preliminary information for selecting prospective gas hydrate accumulation areas for further integrated or individual study from geophysical, geological, geochemical and microbiological perspectives for confirmation of gas hydrate reserves in the area. Further, on the basis of these results it is envisaged that biogenic gas might have been generated in the region which under suitable temperature and pressure conditions might have been transformed into the gas hydrates, and therefore, an integrated study comprising geophysical, geological, geochemical and microbiological data is suggested to establish the gas hydrate reserves in Mahanadi deep water basin.  相似文献   

18.
为了探讨琼东南盆地华光凹陷海底天然气水合物稳定带的分布规律,定量研究了静水压力、底水温度、地温梯度和气源组分对水合物稳定带的影响程度。在此基础上,分析了华光凹陷现今甲烷水合物稳定带的厚度分布。最后,综合各因素的历史演化过程,初步探讨了华光凹陷1.05 Ma BP以来天然气水合物稳定带的演化。结果表明:(1)气源组分和海底温度的变化对研究区内水合物稳定带的影响较大;水合物稳定带厚度与海底温度呈良好的线性负相关性。(2)水深超过600 m的海域具备形成天然气水合物的温压条件;超过600 m水深的海域水合物稳定带厚度大部分超过 100 m,其中西北部稳定带的最大厚度超过300 m,是有利的水合物勘探区。(3)华光凹陷1.05 Ma BP以来天然气水合物稳定带厚度经历了快速增厚–窄幅变化–快速减薄和恢复的过程。麻坑群与水合物稳定变化敏感区在空间上具有较好的叠合关系。结合前人的研究成果,推测其形成与天然气水合物的分解释放有关。  相似文献   

19.
南海北部陆坡区是中国最具潜力的天然气水合物聚集区。通过对研究区似海底反射层(BSR)、水深及热流值分布进行交会,得到了水深、热流双因素对天然气水合物形成的共同控制机理。研究认为,热流值中等(70~83mW/m^2)的地区最有利于天然气水合物的形成和聚集,热流值升高,天然气水合物形成的水深有总体增大的趋势。另外,天然气水合物的形成也需要良好的盖层条件。模拟了当上覆泥质沉积物盖层厚度不同时,天然气水合物形成所需的最低水深,并对不同泥质沉积物盖层厚度对天然气水合物稳定带底界面和厚度的影响做了研究和探讨。当泥质沉积物盖层的厚度越大时,天然气水合物形成的水深可以更浅;当泥质沉积物盖层厚度较小时,天然气水合物的形成则需要更大的水深。另外,当水深越大时,天然气水合物稳定带的底界面(BGHSZ)越深,天然气水合物稳定带的厚度越大。  相似文献   

20.
To confirm the seabed fluid flow at the Haima cold seeps, an integrated study of multi-beam and seismic data reveals the morphology and fate of four bubble plumes and investigates the detailed subsurface structure of the active seepage area. The shapes of bubble plumes are not constant and influenced by the northeastward bottom currents, but the water depth where these bubble plumes disappear (630–650 m below the sea level) (mbsl) is very close to the upper limit of the gas hydrate stability zone in the water column (620 m below the sea level), as calculated from the CTD data within the study area, supporting the “hydrate skin” hypothesis. Gas chimneys directly below the bottom simulating reflectors, found at most sites, are speculated as essential pathways for both thermogenic gas and biogenic gas migrating from deep formations to the gas hydrate stability zone. The fracture network on the top of the basement uplift may be heavily gas-charged, which accounts for the chimney with several kilometers in diameter (beneath Plumes B and C). The much smaller gas chimney (beneath Plume D) may stem from gas saturated localized strong permeability zone. High-resolution seismic profiles reveal pipe-like structures, characterized by stacked localized amplitude anomalies, just beneath all the plumes, which act as the fluid conduits conveying gas from the gas hydrate-bearing sediments to the seafloor, feeding the gas plumes. The differences between these pipe-like structures indicate the dynamic process of gas seepage, which may be controlled by the build-up and dissipation of pore pressure. The 3D seismic data show high saturated gas hydrates with high RMS amplitude tend to cluster on the periphery of the gas chimney. Understanding the fluid migration and hydrate accumulation pattern of the Haima cold seeps can aid in the further exploration and study on the dynamic gas hydrate system in the South China Sea.  相似文献   

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