Noble gas tracing of groundwater/coalbed methane interaction in the San Juan Basin, USA

被引:131
作者
Zhou, Z
Ballentine, CJ
Kipfer, R
Schoell, M
Thibodeaux, S
机构
[1] ETH, Inst Isotope Geol & Mineral Resources, CH-8092 Zurich, Switzerland
[2] Univ Manchester, Sch Earth Atmospher & Environm Sci, Manchester M13 9PL, Lancs, England
[3] Swiss Fed Inst Environm Sci & Technol, CH-8600 Dubendorf, Switzerland
[4] GasConsult Int LLC, Danville, CA 94526 USA
[5] Burlington Resources, Farmington, NM 87402 USA
关键词
D O I
10.1016/j.gca.2005.06.027
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The San Juan Basin natural gas field, located in northwestern New Mexico and southwestern Colorado in the USA, is a case-type coalbed methane system. Groundwater is thought to play a key role in both biogenic methane generation and the CO2 sequestration potential of coalbed systems. We show here how noble gases can be used to construct a physical model that describes the interaction between the groundwater system and the produced gas. We collected 28 gas samples from producing wells in the artesian overpressured high production region of the basin together with 8 gas samples from the underpressured low production zone as a control. Stable isotope and major species determination clearly characterize the gas in the high production region as dominantly biogenic in origin, and the underpressured low producing region as having a significant admix of thermogenic coal gas. He-3/He-4 ratios increase from 0.0836R(a) at the basin margin to 0.318R(a) towards the center, indicating a clear but small mantle He signature in all gases. Coherent fractionation of water-derived Ne-20/Ar-36 and crustal He-4/Ar-40* are explained by a simple Rayleigh fractionation model of open system groundwater degassing. Low Ne-20 concentrations compared to the model predicted values are accounted for by dilution of the groundwater-associated gas by desorbed coalbed methane. This Rayleigh fractionation and dilution model together with the gas production history allows us to quantify the amount of water involved in gas production at each well. The quantified water volumes in both underpressured and overpressured zones range from 1.7 X 10(3) m(3) to 4.2 X 10(5) m(3), with no clear distinction between over- and underpressured production zones. These results conclusively show that the volume of groundwater seen by coal does not play a role in determining the volume of methane produced by secondary biodegradation of these coalbeds. There is no requirement of continuous groundwater flow for renewing the microbes or nutrient components. We furthermore observe strong mass related isotopic fractionation of Ne-20/Ne-22 and Ar-38/Ar-36 isotopic ratios. This can be explained by a noble gas concentration gradient in the groundwater during gas production, which causes diffusive partial re-equilibration of the noble gas isotopes. It is important for the study of other systems in which extensive groundwater degassing may have occurred to recognize that severe isotopic fractionation of air-derived noble gases can occur when such concentration gradients are established during gas production. Excess air-derived Xe and Kr in our samples are shown to be related to the diluting coalbed methane and can only be accounted for if Xe and Kr are preferentially and volumetrically trapped within the coal matrix and released during biodegradation to form CH4. Copyright (c) 2005 Elsevier Ltd.
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收藏
页码:5413 / 5428
页数:16
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