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Coal Geology & Exploration

Authors

ZOU Yi, Hainan Institute of China University of Petroleum (Beijing), Sanya 572025, China; College of Geoscience, China University of Petroleum (Beijing), Beijing 102249, ChinaFollow
LUO Qingyong, Hainan Institute of China University of Petroleum (Beijing), Sanya 572025, China; College of Geoscience, China University of Petroleum (Beijing), Beijing 102249, ChinaFollow
CHEN Jianfa, Hainan Institute of China University of Petroleum (Beijing), Sanya 572025, China; College of Geoscience, China University of Petroleum (Beijing), Beijing 102249, China
ZOU Huayao, Hainan Institute of China University of Petroleum (Beijing), Sanya 572025, China; College of Geoscience, China University of Petroleum (Beijing), Beijing 102249, China
DU Tao, Hainan Institute of China University of Petroleum (Beijing), Sanya 572025, China; College of Geoscience, China University of Petroleum (Beijing), Beijing 102249, China
LIU Xiaoqiang, Faculty of Petroleum, China University of Petroleum-Beijing at Karamay, Karamay 834000, China
CAI Xinyong, Hainan Institute of China University of Petroleum (Beijing), Sanya 572025, China; College of Geoscience, China University of Petroleum (Beijing), Beijing 102249, China
YU Chengming, Hainan Institute of China University of Petroleum (Beijing), Sanya 572025, China; College of Geoscience, China University of Petroleum (Beijing), Beijing 102249, China
FANG Zilong, Hainan Institute of China University of Petroleum (Beijing), Sanya 572025, China; College of Geoscience, China University of Petroleum (Beijing), Beijing 102249, China

Abstract

Background and Purpose Helium is widely applied in high-tech and scientific research fields due to its unique physicochemical properties. Formation water plays a key role in helium migration and enrichment. Typically, in the form of dissolved gas, helium is transported in pores or fractures by formation water. When helium-rich fluids migrate to shallow natural gas reservoirs, helium will experience dissolution and desorption exchange with other gases. This process is affected by formation temperature, pressure, and water salinity, as well as the competitive dissolution between helium and other gases. However, there is a lack of studies on the mechanisms underlying the competitive dissolution between helium and other gases under formation conditions, along with the impact of these mechanisms on helium enrichment in helium-containing and helium-rich natural gas reservoirs.Methods This study investigated the Jinqiu gas field in the Sichuan Basin—a helium-containing to helium-rich gas field discovered recently. Based on actual geological data on gas reservoirs in this gas field, this study conducted physical simulation experiments by setting varying temperature, pressure, and water salinity conditions. Accordingly, delved into the mechanisms behind the competitive dissolution between helium and other gases, as well as the impact of these mechanisms on helium enrichment in natural gas reservoirs.Results and Conclusions Under pressure and temperature ranges of 10–60 MPa and 20–150 ℃, respectively, helium solubility in formation water with identical salinity initially decreased and then increased with rising temperature but kept increasing with pressure. Under a pressure of 25 MPa and a temperature of 70 ℃, the helium solubility decreased significantly with an increase in formation water salinity (0‒300 g/L). Furthermore, under pressures ranging from 10 MPa to 60 MPa, temperatures varying from 20 ℃ to 150 ℃, and a formation water salinity of 84.5 g/L, a higher proportion of helium in mixed gases of helium and nitrogen corresponded to a higher helium solubility in the formation water. The helium accumulation in gas reservoirs in the Jinqiu gas field is primarily affected by the following factors: (1) Decreases in the formation temperature and pressure, combined with hydrocarbon enrichment attributable to hydrocarbon generation from organic matter, jointly decrease helium solubility in formation water, leading to helium exsolution from the formation water. (2) Hydrocarbon gases transport helium to shallower reservoirs. During the migration, further decreases in the formation temperature and pressure accelerate helium exsolution from the formation water. The resulting helium, together with hydrocarbon gases, recharges shallow gas reservoirs. This process results in higher helium content in shallow reservoirs compared to deep ones. (3) Gas reservoirs with anomalously low pressures exhibit lower gas recharge intensity than those with anomalously high and normal pressures, producing a smaller helium dilution effect. Moreover, these reservoirs exhibit lower pressure than their surrounding strata, thus facilitating helium enrichment. Consequently, shallow natural gas reservoirs with anomalously low pressures in the Sichuan Basin have the potential to emerge as play fairways for helium enrichment.

Keywords

helium, competitive dissolution mechanisms, dissolution and exsolution, physical simulation, helium enrichment mechanism, Sichuan Basin, Jinqiu gas field

DOI

10.12363/issn.1001-1986.25.03.0169

Reference

[1] 陈践发,刘凯旋,董勍伟,等. 天然气中氦资源研究现状及我国氦资源前景[J]. 天然气地球科学,2021,32(10):1436−1449.

CHEN Jianfa,LIU Kaixuan,DONG Qingwei,et al. Research status of helium resources in natural gas and prospects of helium resources in China[J]. Natural Gas Geoscience,2021,32(10):1436−1449.

[2] ZHANG Wen,LI Yuhong,ZHAO Fenghua,et al. Granite is an effective helium source rock:Insights from the helium generation and release characteristics in granites from the north Qinling Orogen,China[J]. Acta Geologica Sinica (English Edition),2020,94(1):114−125.

[3] 陶士振,杨怡青,陈悦,等. 氦气资源形成地质条件、成因机理与富集规律[J]. 石油勘探与开发,2024,51(2):436−452.

TAO Shizhen,YANG Yiqing,CHEN Yue,et al. Geological conditions,genetic mechanisms and accumulation patterns of helium resources[J]. Petroleum Exploration and Development,2024,51(2):436−452.

[4] ANDERSON S T. Economics,helium,and the US federal helium reserve:Summary and outlook[J]. Natural Resources Research,2018,27(4):455−477.

[5] WANG Xiaofeng,LIU Quanyou,LIU Wenhui,et al. Helium accumulation in natural gas systems in Chinese sedimentary basins[J]. Marine and Petroleum Geology,2023,150:106155.

[6] BALLENTINE C J,BURNARD P G. Production,release and transport of noble gases in the continental crust[J]. Reviews in Mineralogy and Geochemistry,2002,47(1):481−538.

[7] XU Sheng,NAKAI S,WAKITA H,et al. Mantle–derived noble gases in natural gases from Songliao Basin,China[J]. Geochimica et Cosmochimica Acta,1995,59(22):4675−4683.

[8] DANABALAN D,GLUYAS J G,MACPHERSON C G,et al. The principles of helium exploration[J]. Petroleum Geoscience,2022,28(2):petgeo2021−petgeo2029.

[9] 秦胜飞,李济远,陶刚,等. 氦气简史[J]. 石油知识,2024(1):9–28

[10] 李玉宏,张文,王利,等. 亨利定律与壳源氦气弱源成藏:以渭河盆地为例[J]. 天然气地球科学,2017,28(4):495−501.

LI Yuhong,ZHANG Wen,WANG Li,et al. Henry’s Law and accumulation of crust–derived helium:A case from Weihe Basin,China[J]. Natural Gas Geoscience,2017,28(4):495−501.

[11] 尤兵,陈践发,肖洪,等. 壳源富氦天然气藏成藏模式及关键条件[J]. 天然气地球科学,2023,34(4):672−683.

YOU Bing,CHEN Jianfa,XIAO Hong,et al. Accumulation models and key conditions of crustal–derived helium–rich gas reservoirs[J]. Natural Gas Geoscience,2023,34(4):672−683.

[12] MTILI K M,BYRNE D J,TYNE R L,et al. The origin of high helium concentrations in the gas fields of southwestern Tanzania[J]. Chemical Geology,2021,585:120542.

[13] BALLENTINE C J,LOLLAR B S. Regional groundwater focusing of nitrogen and noble gases into the Hugoton–Panhandle giant gas field,USA[J]. Geochimica et Cosmochimica Acta,2002,66(14):2483−2497.

[14] 秦胜飞,李济远,梁传国,等. 中国中西部富氦气藏氦气富集机理:古老地层水脱氦富集[J]. 天然气地球科学,2022,33(8):1203−1217.

QIN Shengfei,LI Jiyuan,LIANG Chuanguo,et al. Helium enrichment mechanism of helium rich gas reservoirs in Central and Western China:Degassing and accumulation from old formation water[J]. Natural Gas Geoscience,2022,33(8):1203−1217.

[15] 韩伟,李玉宏,任战利,等. 渭河盆地构造热演化对富氦天然气成藏的影响[J]. 天然气地球科学,2025,36(3):390−398.

HAN Wei,LI Yuhong,REN Zhanli,et al. Influence of tectonic thermal evolution on the accumulation of helium–rich natural gas in Weihe Basin[J]. Natural Gas Geoscience,2025,36(3):390−398.

[16] 张福礼,孙启邦,王行运,等. 渭河盆地水溶氦气资源评价[J]. 地质力学学报,2012,18(2):195−202.

ZHANG Fuli,SUN Qibang,WANG Xingyun,et al. Evaluation of water soluble helium resources in Weihe Basin[J]. Journal of Geomechanics,2012,18(2):195−202.

[17] 李玉宏,王行运,韩伟. 渭河盆地氦气资源远景调查进展与成果[J]. 中国地质调查,2015,2(6):1−6.

LI Yuhong,WANG Xingyun,HAN Wei. Progress and achievements of helium gas resources survey in Weihe Basin[J]. Geological Survey of China,2015,2(6):1−6.

[18] DUAN Zhenhao,MAO Shide. A thermodynamic model for calculating methane solubility,density and gas phase composition of methane–bearing aqueous fluids from 273 to 523K and from 1 to 2000bar[J]. Geochimica et Cosmochimica Acta,2006,70(13):3369−3386.

[19] MAO Shide,ZHANG Dehui,LI Yongquan,et al. An improved model for calculating CO2 solubility in aqueous NaCl solutions and the application to CO2–H2O–NaCl fluid inclusions[J]. Chemical Geology,2013,347:43−58.

[20] 陈祥瑞,王云鹏,何志华,等. CH4、CO2与稀有气体溶解度的估算模型及其地质应用[J]. 天然气地球科学,2023,34(4):707−718.

CHEN Xiangrui,WANG Yunpeng,HE Zhihua,et al. Solubility models of CH4,CO2 and noble gases and their geological applications[J]. Natural Gas Geoscience,2023,34(4):707−718.

[21] SMITH S P,KENNEDY B M. The solubility of noble gases in water and in NaCl brine[J]. Geochimica et Cosmochimica Acta,1983,47(3):503−515.

[22] GARDINER G E,SMITH N O. Solubility and partial molar properties of helium in water and aqueous sodium chloride from 25 to 100. deg. and 100 to 600 atmospheres[J]. The Journal of Physical Chemistry,1972,76(8):1195−1202.

[23] BENSON B B,KRAUSE D,PETERSON M A. The solubility and isotopic fractionation of gases in dilute aqueous solution. I. Oxygen[J]. Journal of Solution Chemistry,1979,8(9):655−690.

[24] COLT J. Dissolved gas concentration in water:Computation as functions of temperature,salinity and pressure (Second Edition)[M]. Amsterdam:Elsevier,2012.

[25] 张子枢. 四川盆地天然气中的氦[J]. 天然气地球科学,1992,3(4):1–8

[26] 赵安坤,王东,时志强,等. 四川盆地及周缘地区氦气资源调查研究进展与未来工作方向[J]. 西北地质,2022,55(4):74−84.

ZHAO Ankun,WANG Dong,SHI Zhiqiang,et al. Exploration status and helium resource potential of the helium–bearing natural gas field in Sichuan Basin and its surrounding areas[J]. Northwestern Geology,2022,55(4):74−84.

[27] 张宝收,张本健,汪华,等. 四川盆地金秋气田:一个典型以中生界沉积岩为氦源岩的含氦–富氦气田[J]. 石油与天然气地质,2024,45(1):185−199.

ZHANG Baoshou,ZHANG Benjian,WANG Hua,et al. The Jinqiu gas field in the Sichuan Basin:A typical helium–bearing to helium–rich gas field with the Mesozoic sedimentary rocks as helium source rocks[J]. Oil & Gas Geology,2024,45(1):185−199.

[28] 刘凯旋,陈践发,付娆,等. 威远气田富氦天然气分布规律及控制因素探讨[J]. 中国石油大学学报(自然科学版),2022,46(4):12−21.

LIU Kaixuan,CHEN Jianfa,FU Rao,et al. Discussion on distribution law and controlling factors of helium–rich natural gas in Weiyuan gas field[J]. Journal of China University of Petroleum (Edition of Natural Science),2022,46(4):12−21.

[29] 何登发,李德生,张国伟,等. 四川多旋回叠合盆地的形成与演化[J]. 地质科学,2011,46(3):589−606.

HE Dengfa,LI Desheng,ZHANG Guowei,et al. Formation and evolution of multi–cycle superposed Sichuan Basin,China[J]. Chinese Journal of Geology,2011,46(3):589−606.

[30] 张金川,聂海宽,徐波,等. 四川盆地页岩气成藏地质条件[J]. 天然气工业,2008,28(2):151−156.

ZHANG Jinchuan,NIE Haikuan,XU Bo,et al. Geological condition of shale gas accumulation in Sichuan Basin[J]. Natural Gas Industry,2008,28(2):151−156.

[31] WANG Qiaochu,CHEN Dongxia,WANG Fuwei,et al. Origin and distribution of an under–pressured tight sandstone reservoir:The Shaximiao Formation,central Sichuan Basin[J]. Marine and Petroleum Geology,2021,132:105208.

[32] LIU Kaixuan,CHEN Jianfa,TANG Shuaiqi,et al. Differential enrichment mechanism of helium in the Jinqiu gas field of Sichuan Basin,China[J]. Marine and Petroleum Geology,2024,167:106970.

[33] 王茂云,曾溅辉,王小娟,等. 源–储分离型致密砂岩气藏中气水分布控制因素:以四川盆地中部地区沙溪庙组致密砂岩气为例[J]. 石油学报,2024,45(8):1187−1201.

WANG Maoyun,ZENG Jianhui,WANG Xiaojuan,et al. Controlling factors of gas–water distribution in source–reservoir separated tight sandstone gas reservoirs:A case study of Shaximiao Formation tight sandstone gas in central Sichuan Basin[J]. Acta Petrolei Sinica,2024,45(8):1187−1201.

[34] 张本健,潘珂,吴长江,等. 四川盆地金秋气田侏罗系沙溪庙组多期砂组天然气复合成藏机理及模式[J]. 天然气工业,2022,42(1):51−61.

ZHANG Benjian,PAN Ke,WU Changjiang,et al. Compound gas accumulation mechanism and model of Jurassic Shaximiao Formation multi–stage sandstone formations in Jinqiu gas field of the Sichuan Basin[J]. Natural Gas Industry,2022,42(1):51−61.

[35] 肖富森,黄东,张本健,等. 四川盆地侏罗系沙溪庙组天然气地球化学特征及地质意义[J]. 石油学报,2019,40(5):568−576.

XIAO Fusen,HUANG Dong,ZHANG Benjian,et al. Geochemical characteristics and geological significance of natural gas in Jurassic Shaximiao Formation,Sichuan Basin[J]. Acta Petrolei Sinica,2019,40(5):568−576.

[36] DENG Tao,LI Yong,WANG Zhengjiang,et al. Geochemical characteristics and organic matter enrichment mechanism of black shale in the Upper Triassic Xujiahe Formation in the Sichuan Basin:Implications for paleoweathering,provenance and tectonic setting[J]. Marine and Petroleum Geology,2019,109:698−716.

[37] WANG Qiaochu,CHEN Dongxia,GAO Xianzhi,et al. Microscopic pore structures of tight sandstone reservoirs and their diagenetic controls:A case study of the Upper Triassic Xujiahe Formation of the western Sichuan depression,China[J]. Marine and Petroleum Geology,2020,113:104119.

[38] 杨春龙,苏楠,芮宇润,等. 四川盆地中侏罗统沙溪庙组致密气成藏条件及勘探潜力[J]. 中国石油勘探,2021,26(6):98−109.

YANG Chunlong,SU Nan,RUI Yurun,et al. Gas accumulation conditions and exploration potential of tight gas reservoir of the Middle Jurassic Shaximiao Formation in Sichuan Basin[J]. China Petroleum Exploration,2021,26(6):98−109.

[39] XU Qilu,LIU Bo,MA Yongsheng,et al. Geological and geochemical characterization of lacustrine shale:A case study of the Jurassic Da’anzhai member shale in the central Sichuan Basin,Southwest China[J]. Journal of Natural Gas Science and Engineering,2017,47:124−139.

[40] 杨跃明,王小娟,陈双玲,等. 四川盆地中部地区侏罗系沙溪庙组沉积体系演化及砂体发育特征[J]. 天然气工业,2022,42(1):12−24.

YANG Yueming,WANG Xiaojuan,CHEN Shuangling,et al. Sedimentary system evolution and sandbody development characteristics of Jurassic Shaximiao Formation in the central Sichuan Basin[J]. Natural Gas Industry,2022,42(1):12−24.

[41] 付晓泰,王振平,卢双舫,等. 天然气在盐溶液中的溶解机理及溶解度方程[J]. 石油学报,2000,21(3):89−94.

FU Xiaotai,WANG Zhenping,LU Shuangfang,et al. Mechanism of natural gas dissolving in brines and the dissolving equation[J]. Acta Petrolei Sinica,2000,21(3):89−94.

[42] BROWN A A. PSFormation of high helium gases:A guide for explorationists[C]//AAPG Convention. New Orleans:AAPG,2010.

[43] GILFILLAN S M,BALLENTINE C J,HOLLAND G,et al. The noble gas geochemistry of natural CO2 gas reservoirs from the Colorado Plateau and Rocky Mountain provinces,USA[J]. Geochimica et Cosmochimica Acta,2008,72(4):1174−1198.

[44] QIN Shengfei,LI Jiyuan,LIANG Chuanguo,et al. Helium enrichment mechanism of helium–rich gas reservoirs in Central and Western China:Degassing and accumulation from ancient groundwater[J]. Journal of Natural Gas Geoscience,2022,7(5):249−264.

[45] 龚月,高和群,李小越,等. 四川盆地及周缘页岩气赋存方式展布特征研究[J]. 非常规油气,2023,10(2):49−56.

GONG Yue,GAO Hequn,LI Xiaoyue,et al. Study on the distribution characteristics of occurrence modes of shale gas in the Sichuan Basin and its periphery[J]. Unconventional Oil & Gas,2023,10(2):49−56.

[46] LIU Kaixuan,CHEN Jianfa,FU Rao,et al. Distribution characteristics and controlling factors of helium–rich gas reservoirs[J]. Gas Science and Engineering,2023,110:204885.

[47] 赵栋,王晓锋,刘文汇,等. 孔隙水中氦气溶解与脱溶量估算方法及其地质意义[J]. 天然气工业,2023,43(2):155−164.

ZHAO Dong,WANG Xiaofeng,LIU Wenhui,et al. Calculation method and geological significance of dissolved and exsolved helium in pore water[J]. Natural Gas Industry,2023,43(2):155−164.

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