globalchange  > 过去全球变化的重建
DOI: 10.1306/06021111020
Scopus记录号: 2-s2.0-84858971590
论文题名:
Model for how microbial methane generation can preserve early porosity in dolomite and limestone reservoirs
作者: Kenward P.A.; Goldstein R.H.; Brookfield A.E.; González L.A.; Roberts J.A.
刊名: AAPG Bulletin
ISSN: 0149-1783
EISSN: 1558-9513
出版年: 2012
发表日期: 2012
卷: 96, 期:3
起始页码: 399
结束页码: 413
语种: 英语
Scopus关键词: Aqueous fluids ; Aqueous phase ; Carbonate sediments ; Dolomite formations ; Effective hydraulic conductivities ; Gas generation ; Hydrocarbon reservoir ; Marine carbonates ; Methane gas ; Methanogenesis ; Near-surface ; Nutrient levels ; Pore space ; Primary factors ; Structural resistance ; Two phase systems ; Anoxic sediments ; Cementing (shafts) ; Limestone ; Methanation ; Methane ; Porosity ; Sedimentology ; Steady flow ; Two phase flow ; Methanogens ; carbonate sediment ; cementation ; diagenesis ; dolomite ; fluid flow ; hydraulic conductivity ; limestone ; methane ; methanogenesis ; pore space ; porosity ; sand
Scopus学科分类: Energy ; Earth and Planetary Sciences
英文摘要: In some dolomite and limestone hydrocarbon reservoirs, protection from cementation is a primary factor in porosity preservation. We present a model in which methanogens (methaneproducing microorganisms) produce methane gas (CH 4[g]) that outgasses from solution in pore space, creating a two-phase system that reduces effective hydraulic conductivity (K), protecting pore space from cementation. Methanogens have been implicated in dolomite formation and can generate methane to fill pore space of a model near-surface carbonate sediment (37.5% primary porosity) with CH 4(g)) in 180 to 4650 yr, depending on nutrient levels. Gas generation results in occlusion of the aqueous phase from pore spaces and throats, creating a two-phase flow regime, reducing the effective hydraulic conductivity of model marine carbonate sand by about 50% (from 2.8 to 1.2 cm/day) in as little as 55 yr, therefore reducing aqueous fluid flow necessary for cementation. Despite rapid burial and complete cessation of methanogenesis, effective hydraulic conductivity could take more than 100,000 yr to return to its original value. If methanogenesis continues with burial, the effective hydraulic conductivity is reduced to zero (after 250 yr). Dolomites can preserve more primary porosity with depth than other carbonates. We propose that, in addition to increased structural resistance, a biogenic model exists for porosity preservation in dolomites that is linked to the activity of methanogens. This model represents specific end-member cases and illustrates the effect of methane buildup in relationship to the extent of reservoir diagenesis.
URL: https://www.scopus.com/inward/record.uri?eid=2-s2.0-84858971590&doi=10.1306%2f06021111020&partnerID=40&md5=95706f89e2d674dda259e59f68b6c3fb
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被引频次[WOS]:7   [查看WOS记录]     [查看WOS中相关记录]
资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/13353
Appears in Collections:过去全球变化的重建
影响、适应和脆弱性
科学计划与规划
气候变化与战略
全球变化的国际研究计划
气候减缓与适应
气候变化事实与影响

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Recommended Citation:
Kenward P.A.,Goldstein R.H.,Brookfield A.E.,et al. Model for how microbial methane generation can preserve early porosity in dolomite and limestone reservoirs[J]. AAPG Bulletin,2012-01-01,96(3)
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