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Measurement of impact of microbial processes on fracture permeability and fluid flow in hydraulic fracture systems

Measurement of impact of microbial processes on fracture permeability and fluid flow in hydraulic fracture systems
测量微生物过程对水力压裂系统中裂缝渗透率和流体流动的影响
批准号:
RTI-2016-00062
负责人:
Eberhardt, Erik
金额:
$10.84万
依托单位国家:
加拿大
项目类别:
Research Tools and Instruments
财政年份:
2015
资助国家:
加拿大
项目状态:
已结题
起止时间:
2015-01-01 至 2016-12-31

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中文摘要
翻译
加拿大的页岩气资源是一种新兴的低成本、清洁燃烧的能源。然而,页岩气威尔斯井的产量已经被认为比常规威尔斯井下降得更快,仅在几年之后就下降高达95%。这要求需要钻出或修复更多的威尔斯井以维持生产水平,从而增加了成本、有限水资源的使用以及对水力压裂液的处理的需要。这些产量下降的原因知之甚少,但归因于储层压力损失和储层渗透率随时间的变化。裂缝渗透率代表了主要的流动路径,并且由于支撑剂的降解、裂缝闭合、碳酸盐的沉淀和未培养的微生物群落的生长,裂缝渗透率可以随时间而降低。后者是众所周知的生物矿化剂,通过它们在地下环境中的生长和代谢活动,已经观察到影响地下水流动状况。杀菌剂用于保护储层免受污染;然而,我们团队最近对水力压裂返排液的测试表明,这些杀菌剂仅部分有效,并且嗜压和嗜热(压力和温度爱好)微生物在水力压裂液中生长并以相对较高的细胞密度繁殖。
英文摘要
Canada’s shale gas resources represent an emerging low-cost, clean burning energy source. However, production output from shale gas wells has been seen to decline much more rapidly than conventional wells, dropping up to 95% after only a few years. This requires that ever more wells need to be drilled or reconditioned to maintain production levels, thereby increasing costs, use of limited water resources, and need for disposal of hydraulic fracturing fluids. Reasons for these production declines are poorly understood, but are ascribed to loss of reservoir pressure and changes in reservoir permeability over time. Fracture permeability represents the predominant flow path and can decrease over time due to degradation of proppants, fracture closure, precipitation of carbonates, and growth of uncultivated microbial communities. The latter are well known agents of biomineralization and through their growth and metabolic activities in subsurface environments have been observed to influence groundwater flow regimes. Bactericides are used to protect the reservoir from contamination; however, recent testing of hydraulic fracturing flowback fluids by our team have shown that these biocides remain only partly effective and that piezophillic and thermophillic (pressure and temperature loving) microbes grow in and populate hydraulic fracturing fluids to relatively high cell densities.
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