Understanding poromechanical response of a biogenic coalbed methane reservoir

IF 6.9 1区 工程技术 Q2 ENERGY & FUELS
Rohit Pandey, Satya Harpalani
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引用次数: 0

Abstract

Biogenic coalbed methane (BCBM) reservoirs aim to produce methane from in situ coal deposits following microbial conversion of coal. Success of BCBM reservoirs requires economic methane production within an acceptable timeframe. The work reported here quantifies the findings of previously published qualitative work, where it was found that bioconversion induces strains in the pore, matrix and bulk scales. Using imaging and dynamic strain monitoring techniques, the bioconversion induced strain is quantified here. To understand the effect of these strains from a reservoir geomechanics perspective, a corresponding poromechanical model is developed. Furthermore, findings of imaging experiments are validated using core-flooding flow experiments. Finally, expected field-scale behavior of the permeability response of a BCBM operation is modeled and analyzed. The results of the study indicated that, for Illinois coals, bioconversion induced strains result in a decrease in fracture porosity, resulting in a detrimental permeability drop in excess of 60% during bioconversion, which festers itself exponentially throughout its producing life. Results indicate that reservoirs with high initial permeability that will support higher Darcian flowrates, would be better suited for coal bioconversion, thereby providing a site-selection criteria for BCBM operations.

Abstract Image

了解生物煤层气储层的孔隙力学响应
生物煤层气(BCBM)储层旨在通过微生物对煤炭的转化,从原地煤层中生产甲烷。生物煤层气储层的成功需要在可接受的时间范围内生产出经济的甲烷。本文报告的工作量化了之前发表的定性工作的结果,发现生物转化会诱发孔隙、基质和块体尺度的应变。利用成像和动态应变监测技术,本文对生物转化引起的应变进行了量化。为了从储层地质力学的角度理解这些应变的影响,还建立了相应的孔隙力学模型。此外,还利用岩芯充水流动实验验证了成像实验的结果。最后,模拟并分析了岩心钻井作业渗透率响应的预期现场规模行为。研究结果表明,对于伊利诺斯州的煤炭,生物转化引起的应变会导致裂缝孔隙度下降,从而在生物转化过程中造成超过 60% 的有害渗透率下降,并在整个生产生命周期内呈指数级增长。结果表明,初始渗透率高且可支持较高达西安流速的储层更适合煤炭生物转化,从而为 BCBM 运营提供了选址标准。
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来源期刊
CiteScore
11.40
自引率
8.40%
发文量
678
审稿时长
12 weeks
期刊介绍: The International Journal of Coal Science & Technology is a peer-reviewed open access journal that focuses on key topics of coal scientific research and mining development. It serves as a forum for scientists to present research findings and discuss challenging issues in the field. The journal covers a range of topics including coal geology, geochemistry, geophysics, mineralogy, and petrology. It also covers coal mining theory, technology, and engineering, as well as coal processing, utilization, and conversion. Additionally, the journal explores coal mining environment and reclamation, along with related aspects. The International Journal of Coal Science & Technology is published with China Coal Society, who also cover the publication costs. This means that authors do not need to pay an article-processing charge.
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