岩性油气藏 ›› 2018, Vol. 30 ›› Issue (6): 151159.doi: 10.12108/yxyqc.20180619
丁勇1,2, 马新星1, 叶亮1, 肖元相1, 张燕明1, 古永红1, 马超星3
DING Yong1,2, MA Xinxing1, YE Liang1, XIAO Yuanxiang1, ZHANG Yanming1, GU Yonghong1, MA Chaoxing3
摘要: 为了明确不同介质注入过程中有效应力的变化规律,揭示超临界CO2压裂的起裂压力低、穿透距离远、裂缝密度广的力学机理,基于线弹性多孔介质模型,线性分解井筒平面各向应力,引入井筒增压速率,对孔隙压力与附加周向应力进行修正。结合长庆气田致密气特征,集CO2破岩增压与滑溜水体积压裂双重优势,改进气藏地质储量容积差值法,优化CO2注入量,根据井下压力计监测数据分析动态滤失平衡点,优化CO2施工排量,研发防冻隔离液,开发单机组作业流程,攻关形成前置CO2蓄能压裂技术。计算结果表明:液态CO2压裂的起裂压力降低了69.2%,超临界CO2压裂的起裂压力降低了75.5%。在鄂尔多斯盆地东部开展先导性试验6口井,一次喷通率100%,平均试气产量7.59万m3/d,为长庆气田探索出了新的技术增产途径。
中图分类号:
[1] 胡俊坤, 龚伟, 任科.中国致密气开发关键因素分析与对策思考. 天然气技术与经济, 2015, 9(6):24-29. HU J K, GONG W, REN K. Key factors affecting China tightgas development and some countermeasures. Natural Gas Technology and Economy, 2015, 9(6):24-29. [2] 位云生, 贾爱林, 何东博, 等.中国页岩气与致密气开发特征与开发技术异同. 天然气工业, 2017, 37(11):43-52. WEI Y S, JIA A L, HE D B, et al. Comparative analysis of development characteristics and technologies between shale gas and tight gas in China. Natural Gas Industry, 2017, 37(11):43-52. [3] 贾爱林. 中国天然气开发技术进展及展望. 天然气工业, 2018, 38(4):77-85. JIA A L. Progress and prospects of natural gas development technologies in China. Natural Gas Industry, 2018, 38(4):77-85. [4] 王朋岩, 邴振阳. 全球致密砂岩气资源分布特征与规律. 中国锰业, 2017, 35(6):23-29. WANG P Y, BING Z Y. Distribution characteristics and regularities of tight sandstone gas resources in the world. China's Manganese Industry, 2017, 35(6):23-29. [5] 杨华, 付金华, 刘新社, 等.鄂尔多斯盆地上古生界致密气成藏条件与勘探开发.石油勘探与开发, 2012, 39(3):295-303. YANG H, FU J H, LIU X S, et al. Accumulation conditions and exploration and development of tight gas in the Upper Paleozoic of the Ordos Basin. Petroleum Exploration and Development, 2012, 39(3):295-303. [6] 覃小丽, 李荣西, 席胜利, 等.鄂尔多斯盆地东部地区太原组储层黏土矿物特征及成因.岩性油气藏, 2016, 28(1):50-55. QIN X L, LI R X, XI S L, et al. Characteristics and origin of clay minerals of Taiyuan Formation in eastern Ordos Basin. Lithologic Reservoirs, 2016, 28(1):50-55. [7] 马力, 欧阳传湘, 谭钲扬, 等.低渗透油藏CO2驱中后期提效方法研究. 岩性油气藏, 2018, 30(2):141-144. MA L, OUYANG C X, TAN Z Y, et al. Efficiency improvement of CO2 flooding in middle and later stage for low permeability reservoirs. Lithologic Reservoirs, 2018, 30(2):141-144. [8] 吴金桥, 高志亮, 孙晓, 等. 液态CO2压裂技术研究现状与展望.长江大学学报(自科版), 2014, 11(10):104-107. WU J Q, GAO Z L, SUN X, et al. Research and prospect of CO2 fracturing technology. Journal of Yangtze University(Natural Science Edition), 2014, 11(10):104-107. [9] 杨发, 汪小宇, 李勇. 二氧化碳压裂液研究及应用现状.石油化工应用, 2014, 33(12):9-12. YANG F, WANG X Y, LI Y. Research and application status of carbon dioxide fracturing fluid. Petrochemical Industry Application, 2014, 33(12):9-12. [10] KING S R. Liquid CO2 for the stimulation of low-permeability reservoirs. SPE 11616, 1983. [11] YOST Ⅱ A B, GEHR J B. CO2/sand fracturing in Devonian shales. SPE 26925, 1993. [12] GUPTA D V S, BOBIER D M. The history and success of liquid CO2 and CO2/N2 fracturing system. SPE 40016, 1998. [13] 谢平, 侯光东, 韩静静.CO2压裂技术在苏里格气田的应用. 断块油气田, 2009, 16(5):104-106. XIE P, HOU G D, HAN J J. Application of CO2 fracturing technology in Sulige Gas Field. Fault-Block Oil & Gas Field, 2009, 16(5):104-106. [14] 卢义玉, 廖引, 汤积仁, 等.页岩超临界CO2压裂起裂压力与裂缝形态试验研究. 煤炭学报, 2018, 43(1):176-180. LU Y Y, LIAO Y, TANG J R, et al. Experimental study on fracture initiation pressure and morphology in shale using supercritical CO2 fracturing. Journal of China Coal Society, 2018, 43(1):176-180. [15] 宋振云, 苏伟东, 杨延增, 等. CO2干法加砂压裂技术研究与实践. 天然气工业, 2014, 34(6):55-59. SONG Z Y, SU W D, YANG Y Z, et al. Experimental studies of CO2/sand dry-frac process. Natural Gas Industry, 2014, 34(6):55-59. [16] 王香增, 吴金桥, 张军涛.陆相页岩气层的CO2压裂技术应用探讨. 天然气工业, 2014, 34(1):64-67. WANG X Z, WU J Q, ZHANG J T. Application of CO2 fracturing technology for terrestrial shale gas reservoirs. Natural Gas Industry, 2014, 34(1):64-67. [17] 陈立强, 田守嶒, 李根生, 等.超临界CO2压裂起裂压力模型与参数敏感性研究. 岩土力学, 2015, 36(2):125-130. CHEN L Q, TIAN S Z, LI G S, et al. Initiation pressure models for supercritical CO2 fracturing and sensitivity analysis. Rock and Soil Mechanics, 2015, 36(2):125-130. [18] 孙可明, 吴迪, 粟爱国, 等.超临界CO2作用下煤体渗透性与孔隙压力-有效体积应力-温度耦合规律试验研究. 岩石力学与工程学报, 2013, 32(2):3760-3767. SUN K M, WU D, SU A G, et al. Coupling experimental study of coal permeability with pore pressure-effective volume stresstemperature under supercritical carbon dioxide action. Chinese Journal of Rock Mechanics and Engineering, 2013, 32(2):3760-3767. [19] 陆友莲, 王树众, 沈林华, 等. 纯液态CO2压裂非稳态过程数值模拟. 天然气工业, 2008, 28(11):93-95. LU Y L, WANG S Z, SHEN L H, et al. Numerical simulation on the initial unstable stages of liquid CO2 fracturing. Natural Gas Industry, 2008, 28(11):93-95. [20] 赵志恒, 李晓, 张搏, 等.超临界二氧化碳无水压裂新技术实验研究展望. 天然气勘探与开发, 2016, 39(2):58-63. ZHAO Z H, LI X, ZHANG B, et al. Experimental study on supercritical CO2 fracturing. Natural Gas Exploration & Development, 2016, 39(2):58-63. [21] 陈丽华.强水敏储层矿物高温变化对储层物性的影响——以金家油田沙一段为例. 岩性油气藏, 2016, 28(4):121-126. CHEN L H. Influence of thermal alteration of minerals in strong water sensitive reservoir on physical properties:a case study from the first member of Shahejie Formation in Jinjia Oilfield. Lithologic Reservoirs, 2016, 28(4):121-126. [22] 孙小辉, 孙宝江, 王志远.超临界CO2压裂裂缝温度场模型. 石油学报, 2015, 36(12):1587-1592. SUN X H, SUN B J, WANG Z Y. Fissure temperature field model of supercritical CO2 fracturing. Lithologic Reservoirs, 2015, 36(12):1587-1592. [23] 刘合, 王峰, 张劲, 等. 二氧化碳干法压裂技术——应用现状与发展趋势. 石油勘探与开发, 2014, 41(4):466-472. LIU H, WANG F, ZHANG J, et al. Fracturing with carbon dioxide:Application status and development trend. Petroleum Exploration and Development, 2014, 41(4):466-472. [24] 张健, 敬季昀, 王杏尊.利用小型压裂短时间压降数据快速获取储层参数的新方法. 岩性油气藏, 2018, 30(4):133-139. ZHANG J, JIN J Y, WANG X Z. New method for obtaining reservoir parameters with a short time of pressure drop after mini-fracturing. Lithologic Reservoirs, 2018, 30(4):133-139. |
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