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1.
孟宪伟  张俊  夏鹏  王湘芹 《海洋学报》2013,35(6):190-194
海洋沉积物中的硫酸盐-甲烷反应界面(SMI)的深度变化能够指示下伏甲烷水合物的赋存状态。本文通过对南海北部陆坡天然气水合物潜在分布区沉积物间隙水化学和自生碳酸盐氧、碳同位素组成资料系统分析和对比,探讨了南海北部陆坡沉积物的SMI深度空间变化对下伏甲烷水合物的赋存状态的指示意义。结果表明,南海北部陆坡沉积物的SMI的深度呈现出从西南-东北变浅的趋势,这一趋势与自生碳酸盐的碳同位素组成揭示的甲烷释放量增大趋势有很好的对应关系,进而表明在南海北部陆坡从西南-东北甲烷水合物的埋藏深度变浅或者甲烷水合物的分解程度增大。  相似文献   

2.
在富甲烷和含天然气水合物的海洋沉积物中,硫酸盐-甲烷界面(SMI)正逐步为大家所认识,被看作一个基本的生物地球化学氧化还原作用边界。SMI之上沉积物富硫酸盐,其下贫硫酸盐和富甲烷。SMI是一个很薄的带,甲烷的厌氧氧化作用是通过甲烷氧化作用完成的。在甲烷氧化作用过程中,甲烷和硫酸盐被消耗,形成溶解无机碳(DIC)和硫化氢(HS^-),反应式如下:  相似文献   

3.
硫酸盐-甲烷界面在富甲烷和含天然气水合物的海洋沉积区已经成为一个重要的生物地球化学识别边界。在硫酸盐-甲烷界面之上,沉积物中的硫酸盐因参与分解有机质和甲烷厌氧氧化反应而被消耗,而其界面之下沉积物中的甲烷则不断生成,含量逐渐增加。根据该界面附近硫酸盐浓度和甲烷浓度的变化特征,可以判断该区甲烷流体通量的大小,从而指示下伏天然气水合物的可能赋存状况。南海北部陆坡的柱状沉积物孔隙水数据的分析显示,硫酸盐-甲烷界面埋深比较浅,表明该海域的甲烷通量较高。这种高甲烷通量很可能是由下伏的天然气水合物所引起的,并暗示着该区下伏海底可能有天然气水合物沉积层赋存。  相似文献   

4.
硫酸盐-甲烷界面在富甲烷和含天然气水合物的海洋沉积区已经成为一个重要的生物地球化学识别边界.在硫酸盐-甲烷界面之上,沉积物中的硫酸盐因参与分解有机质和甲烷厌氧氧化反应而被消耗,而界面之下沉积物中的甲烷则不断生成,含量逐渐增加.根据该界面附近硫酸盐浓度和甲烷浓度的变化特征,可以判断该区甲烷流体通量的大小,从而指示下伏天然气水合物的可能赋存状况.南海北部陆坡的柱状沉积物孔隙水数据的分析显示,其硫酸盐-甲烷界面埋深比较浅,表明该海域的甲烷通量较高.这种高甲烷通量很可能是由下伏的天然气水合物所引起的,并暗示着该区下伏海底可能有天然气水合物沉积层赋存.  相似文献   

5.
利用孔隙水化学和稳定同位素化学等方法分析珠江口红树林湿地沉积层孔隙水硫酸根(SO_4~(2-))、游离甲烷气体(CH_4)、总溶解无机碳(DIC)以及δ13CDIC的垂直剖面分布特征.结果显示,孔隙水SO_4~(2-)浓度自表至底呈线性梯度减小,至硫酸盐-甲烷界面(SMI)附近,硫酸盐几乎全部消耗,而CH_4浓度急剧增大,KC1、KC3、KC4、K17和K10等5个站位SMI深度分别为20、50、70、80、50 cm,SMI深度由红树林湿地林间向光滩逐渐增大.同时,孔隙水DIC浓度在该深度明显升高,沉积物发生强烈的甲烷厌氧氧化(AOM)作用.在AOM过程中,由于12CH_4氧化速率较13CH_4快,故引起沉积物孔隙水δ13CDIC偏轻.沉积层中的有机质含量及其活性高低是制约沉积物SMI分布深浅的关键因素,高含量的活性有机质可加速孔隙水SO_4~(2-)再矿化过程的消耗,使得通过AOM作用的SO_4~(2-)消耗通量相应增大.在微生物作用下,部分活性有机质被大量消耗,致使进入沉积物SO_4~(2-)还原带的活性有机质数量相应减少,从而引起部分SO_4~(2-)转为与CH_4发生反应促进AOM作用.  相似文献   

6.
阿拉伯海马克兰海域是具有天然气水合物勘查潜力的重要区域之一。对该海域G16站位沉积物样品的碎屑矿物、钼、有机碳和顶空气甲烷含量以及孔隙水总碱度和阴阳离子等地球化学特征进行综合分析。结果表明:Mg_(2+)和Ca_(2+)的浓度随深度明显降低,总碱度、Mg_(2+)/Ca_(2+)随深度显著增加;在硫酸盐-甲烷界面(SMI),SO_4(2-))的浓度线性降低至0.31 mmol/L,甲烷含量急剧增加至784μmol/L,黄铁矿含量达到最大值并形成一个Mo峰。研究区硫酸根浓度线性降低和强烈亏损梯度以及Mg_2~+、Ca_(2+)、总碱度和有机碳含量的变化特征,指示研究区存在强烈的甲烷厌氧氧化反应(AOM),并形成浅的SMI(估算深度4.62 mbsf)。孔隙水样品的地球化学异常与沉积物自生黄铁矿和Mo含量存在耦合现象,表明本站位深部沉积物中可能赋存有天然气水合物藏。  相似文献   

7.
对采自南海北部陆坡东沙海域水合物区HD319、HD196A和GC10站位的浅表层沉积物进行了地球化学特征研究。X射线衍射分析和扫描电镜观察表明,沉积物中存在具有天然气水合物和甲烷渗漏指示意义的自生碳酸盐、硫酸盐和黄铁矿。沉积物孔隙水化学组分分析显示,随着埋藏深度加深,SO42-、Ca2+、Mg2+和Sr2+浓度明显降低,CH4、H2S浓度的增加,以及Mg2+/Ca2+和Sr2+/Ca2+比值急剧增加,与世界上水合物区浅表层沉积物孔隙水中离子浓度异常特征吻合。沉积物顶空气游离烃分析结果和孔隙水化学组分变化,特别是SO42-、H2S和甲烷含量的急剧变化,说明研究区有丰富的气源,赋存水合物的可能性非常大,同时指示了研究区硫酸盐-甲烷界面(SMI)较浅,位于海底之下8m左右。  相似文献   

8.
利用化学和稳定同位素化学等方法分析研究区沉积物间隙水甲烷和硫酸根、pH和∑CO2以及δ^13C—CH4和δ^13C—ECO2的垂直剖面分布。结果显示,间隙水硫酸根浓度呈线性梯度减小,至沉积物甲烷-硫酸盐界面(sulfate-methane interface,SMI)附近,硫酸盐几乎全部消耗而甲烷浓度急剧增大;与此同时,间隙水pH和∑CO2在该深度位置明显升高。间隙水地球化学特征揭示了沉积物发生了AOM作用。在AOM过程中,由于^12CH4氧化速率较^13CH4快,故引起沉积物间隙水剩余甲烷的碳同位素偏重,而δ^13C—ZCO2值变为极负,珠江口QA11—2、QA12-9、QA12—14和GS-1四个站位SMI对应深度分别为12cm、38cm、50cm和204cm,而南海BD-7站位由间隙水硫酸根剖面变化推算约为600cm。从珠江河口到南海沉积物,由于受陆源输入的减少,表层沉积物有机质含量呈降低趋势。有机质输入量及其活性的高低是制约了沉积物SMI分布深浅的关键因素,这是由于高含量的活性有机质一方面可加速间隙水硫酸根通过有机质再矿化分解作用途径消耗;另一方面可引起向上扩散进入AOM反应带的甲烷通量增大,使得通过AOM作用的硫酸根消耗通量相应增大,其结果造成沉积物SMI的上移。根据沉积物C/N比值以及^13C剖面变化,推断AOM作用的可能发生机制是由于在沉积物表层再矿化作用过程中,因一部分活性有机质被大量消耗,导致进入沉积物硫酸根还原带底部的活性有机质数量相应减少,从而引起部分硫酸根转为与甲烷发生反应,并在微生物的作用下完成AOM过程。  相似文献   

9.
定义了海域天然气水合物成矿带的上界面。指出在地球深部存在最原始的、从根本上不依靠光合作用来生存的生命系统。根据对ODP岩心样品中微生物数量的统计,海底以下沉积层中的生物数量可能占据全球原核生物总量的70%,其生物总碳量和地球表面所有植物的碳总量相当。地球内部如此巨大的生物总量应该在地壳中的气体分布等方面起着重要作用。甲烷在地壳层中广泛存在,并主要是微生物成因的。微生物产甲烷的途径主要有两个,一是二氧化碳还原,另一个是醋酸盐发酵。相应地,参与产甲烷的微生物菌群主要是产甲烷菌和食醋酸菌。甲烷在沉积层中的厌氧氧化是一个不争的事实。该过程发生在海底以下一个非常局限的区带,称为硫酸盐还原-甲烷厌氧氧化区带。通常,这个区带很窄,仅为一个面,因此,硫酸盐还原-甲烷厌氧氧化区带又称硫酸盐还原-甲烷厌氧氧化界面。这是一个基本的生物地球化学界面,在功能上它起到屏蔽甲烷向海底和大气逸散的作用,是一个巨大的甲烷汇。甲烷的厌氧氧化同样是一个由微生物介导的过程,参与此过程的微生物主要是食甲烷古菌和硫酸盐还原菌。硫酸盐还原-甲烷厌氧氧化界面在海洋沉积层中一般深可达海底以下上百米,浅可至海底。此界面为天然气水合物的上界面,该界面以上没有甲烷...  相似文献   

10.
南海东沙东北部碳酸盐岩和泥质沉积物中的生物标志化合物组合及其碳同位素组成分析表明,研究区内甲烷缺氧氧化作用(anaerobic oxidation of methane-AOM)发育.研究区内碳酸盐岩中含丰富的AOM标志化合物,2,6,11,15-四甲基十六烷(Crocetane-Cr.)、2,6,10,15,19-五甲基番茄烷(Pentamethylicosane-PMI)和2,6,10,15,19,23-六甲基二十四烷(Squalane-Sq角鲨烷)的13C亏损强烈(δ13C值介于-74.2‰~-119.0‰PDB之间),表明碳酸盐岩形成于AOM,同时反映该研究区曾发生过强烈、持续的富CH4流体释放活动.柱状泥质沉积物中,AOM生物标志化合物在硫酸岩-甲烷过渡带(SMI-Sulfate-Methane Interface)边界附近相对丰度高,SMI之上样品中含量低,或未检出,表明现代环境在SMI附近有大量嗜甲烷微生物生长,使得深部上升的甲烷被大量消耗,很少有甲烷逸出海底.AOM生物标志化合物可用来指示SMI边界.不同站位、不同岩性AOM生物标志化合物组成(包括碳同位素组成)的差异反映了嗜甲烷古细菌组成的不同.  相似文献   

11.
The northern slope of the South China Sea is a gas-hydrate-bearing region related to a high deposition rate of organic-rich sediments co-occurring with intense methanogenesis in subseafloor environments.Anaerobic oxidation of methane(AOM) coupled with bacterial sulfate reduction results in the precipitation of solid phase minerals in seepage sediment,including pyrite and gypsum.Abundant aggregates of pyrites and gypsums are observed between the depth of 667 and 850 cm below the seafloor(cmbsf) in the entire core sediment of HS328 from the northern South China Sea.Most pyrites are tubes consisting of framboidal cores and outer crusts.Gypsum aggregates occur as rosettes and spheroids consisting of plates.Some of them grow over pyrite,indicating that gypsum precipitation postdates pyrite formation.The sulfur isotopic values(δ~(34) S) of pyrite vary greatly(from –46.6‰ to –12.3‰ V-CDT) and increase with depth.Thus,the pyrite in the shallow sediments resulted from organoclastic sulfate reduction(OSR) and is influenced by AOM with depth.The relative high abundance and δ~(34) S values of pyrite in sediments at depths from 580 to 810 cmbsf indicate that this interval is the location of a paleo-sulfate methane transition zone(SMTZ).The sulfur isotopic composition of gypsum(from–25‰ to –20.7‰) is much lower than that of the seawater sulfate,indicating the existence of a 34 S-depletion source of sulfur species that most likely are products of the oxidation of pyrites formed in OSR.Pyrite oxidation is controlled by ambient electron acceptors such as MnO_2,iron(Ⅲ) and oxygen driven by the SMTZ location shift to great depths.The δ~(34) S values of gypsum at greater depth are lower than those of the associated pyrite,revealing downward diffusion of 34 S-depleted sulfate from the mixture of oxidation of pyrite derived by OSR and the seawater sulfate.These sulfates also lead to an increase of calcium ions from the dissolution of calcium carbonate mineral,which will be favor to the formation of gypsum.Overall,the mineralogy and sulfur isotopic composition of the pyrite and gypsum suggest variable redox conditions caused by reduced seepage intensities,and the pyrite and gypsum can be a recorder of the intensity evolution of methane seepage.  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.
We investigated gas hydrate in situ inventories as well as the composition and principal transport mechanisms of fluids expelled at the Amsterdam mud volcano (AMV; 2,025 m water depth) in the Eastern Mediterranean Sea. Pressure coring (the only technique preventing hydrates from decomposition during recovery) was used for the quantification of light hydrocarbons in near-surface deposits. The cores (up to 2.5 m in length) were retrieved with an autoclave piston corer, and served for analyses of gas quantities and compositions, and pore-water chemistry. For comparison, gravity cores from sites at the summit and beyond the AMV were analyzed. A prevalence of thermogenic light hydrocarbons was inferred from average C1/C2+ ratios <35 and δ13C-CH4 values of ?50.6‰. Gas venting from the seafloor indicated methane oversaturation, and volumetric gas–sediment ratios of up to 17.0 in pressure cores taken from the center demonstrated hydrate presence at the time of sampling. Relative enrichments in ethane, propane, and iso-butane in gas released from pressure cores, and from an intact hydrate piece compared to venting gas suggest incipient crystallization of hydrate structure II (sII). Nonetheless, the co-existence of sI hydrate can not be excluded from our dataset. Hydrates fill up to 16.7% of pore volume within the sediment interval between the base of the sulfate zone and the maximum sampling depth at the summit. The concave-down shapes of pore-water concentration profiles recorded in the center indicate the influence of upward-directed advection of low-salinity fluids/fluidized mud. Furthermore, the SO 4 2? and Ba2+ pore-water profiles in the central part of the AMV demonstrate that sulfate reduction driven by the anaerobic oxidation of methane is complete at depths between 30 cm and 70 cm below seafloor. Our results indicate that methane oversaturation, high hydrostatic pressure, and elevated pore-water activity caused by low salinity promote fixing of considerable proportions of light hydrocarbons in shallow hydrates even at the summit of the AMV, and possibly also of other MVs in the region. Depending on their crystallographic structure, however, hydrates will already decompose and release hydrocarbon masses if sediment temperatures exceed ca. 19.3°C and 21.0°C, respectively. Based on observations from other mud volcanoes, the common occurrence of such temperatures induced by heat flux from below into the immediate subsurface appears likely for the AMV.  相似文献   

14.
Within the accretionary prism offshore SW Taiwan, widespread gas hydrate accumulations are postulated to occur based on the presence of a bottom simulating reflection. Methane seepage, however, is also widespread at accretionary ridges offshore SW Taiwan and may indicate a significant loss of methane bypassing the gas hydrate system. Four Way Closure Ridge, located in 1,500 m water depth, is an anticlinal ridge that would constitute an ideal trap for methane and consequently represents a site with good potential for gas hydrate accumulations. The analysis of high-resolution bathymetry, deep-towed sidescan sonar imagery, high-resolution seismic profiling and towed video observations of the seafloor shows that Four Way Closure Ridge is and has been a site of intensive methane seepage. Continuous seepage is mainly evidenced by large accumulations of authigenic carbonate precipitates, which appear to be controlled by the creation of fluid pathways through faulting. Consequently, Four Way Closure Ridge is not a closed system in terms of fluid migration and seepage. A conceptual model of the evolution of gas hydrates and seepage at accretionary ridges suggests that seepage is common and may be a standard feature during the geological development of ridges in accretionary prisms. The observation of seafloor seepage alone is therefore not a reliable indicator of exploitable gas hydrate accumulations at depth.  相似文献   

15.
A shallow gas depth-contour map covering the Skagerrak-western Baltic Sea region has been constructed using a relatively dense grid of existing shallow seismic lines. The digital map is stored as an ESRI® shape file in order to facilitate comparison with other data from the region. Free gas usually occurs in mud and sandy mud but is observed only when sediment thickness exceeds a certain threshold value, depending on the water depth of the area in question. Gassy sediments exist at all water depths from approx. 20 m in the coastal waters of the Kattegat to 360 m in the Skagerrak. In spite of the large difference in water depths, the depth of free gas below seabed varies only little within the region, indicating a relatively fast movement of methane in the gas phase towards the seabed compared to the rate of diffusion of dissolved methane. Seeps of old microbial methane occur in the northern Kattegat where a relatively thin cover of sandy sediments exists over shallow, glacially deformed Pleistocene marine sediments. Previous estimates of total methane escape from the area may be correct but the extrapolation of local methane seepage rate data to much larger areas on the continental shelf is probably not justified. Preliminary data on porewater chemistry were compared with the free gas depth contours in the Aarhus Bay area, which occasionally suffers from oxygen deficiency, in order to examine if acoustic gas mapping may be used for monitoring the condition of the bay.  相似文献   

16.
Theoretically, propagating internal tides in the ocean may reflect at turning depths, where buoyancy frequencies equal tidal frequencies, before colliding with the air-sea interface or rugged bottom topography. Globally, the internal tide lower turning depths(ITLTDs) in the open ocean have been mapped; however, knowledge of the presence of ITLTDs in the South China Sea(SCS) is lacking. In this study, 2 125 high-quality temperature-salinity profiles(including 58 deep-sea hydrographic measurements...  相似文献   

17.
南海海槽是潜在的天然气水合物发育区,在表层沉积物中分布有石膏-黄铁矿组合。通过对石膏、黄铁矿的形貌特征、矿物组成、化学元素、硫同位素等的分析,讨论和揭示了石膏-黄铁矿组合的成岩环境、形成机理及其与天然气渗漏的关系。石膏集合体为土块状和多孔状、玫瑰状,表面分布有孔洞或微孔,黄铁矿为莓球状、球粒结块状和虫管状。不同形状的石膏、黄铁矿的化学成分没有明显差别。石膏-黄铁矿的形成机理是海底渗漏的天然气与硫酸盐发生缺氧甲烷氧化反应,产物HS^-与沉积物中的Fe^2+反应产生FeS并转变为黄铁矿,在形成FeS的过程中产生的H^+促进碳酸盐溶解,Ca^2+与SO4^2-达到过饱和沉淀出重。^34S的石膏。因此,石膏-黄铁矿组合是海底存在天然气渗漏的证据,这一发现对开展南沙海槽潜在天然气水舍物的调查以及对天然气渗漏事件的研究具有一定的科学意义。  相似文献   

18.
The geochemical cycling of barium was investigated in sediments of pockmarks of the northern Congo Fan, characterized by surface and subsurface gas hydrates, chemosynthetic fauna, and authigenic carbonates. Two gravity cores retrieved from the so-called Hydrate Hole and Worm Hole pockmarks were examined using high-resolution pore-water and solid-phase analyses. The results indicate that, although gas hydrates in the study area are stable with respect to pressure and temperature, they are and have been subject to dissolution due to methane-undersaturated pore waters. The process significantly driving dissolution is the anaerobic oxidation of methane (AOM) above the shallowest hydrate-bearing sediment layer. It is suggested that episodic seep events temporarily increase the upward flux of methane, and induce hydrate formation close to the sediment surface. AOM establishes at a sediment depth where the upward flux of methane from the uppermost hydrate layer counterbalances the downward flux of seawater sulfate. After seepage ceases, AOM continues to consume methane at the sulfate/methane transition (SMT) above the hydrates, thereby driving the progressive dissolution of the hydrates “from above”. As a result the SMT migrates downward, leaving behind enrichments of authigenic barite and carbonates that typically precipitate at this biogeochemical reaction front. Calculation of the time needed to produce the observed solid-phase barium enrichments above the present-day depths of the SMT served to track the net downward migration of the SMT and to estimate the total time of hydrate dissolution in the recovered sediments. Methane fluxes were higher, and the SMT was located closer to the sediment surface in the past at both sites. Active seepage and hydrate formation are inferred to have occurred only a few thousands of years ago at the Hydrate Hole site. By contrast, AOM-driven hydrate dissolution as a consequence of an overall net decrease in upward methane flux seems to have persisted for a considerably longer time at the Worm Hole site, amounting to a few tens of thousands of years.  相似文献   

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