Page 57 - 《应用声学》2020年第1期
P. 57

第 39 卷 第 1 期                   李帆等: 页岩可压裂性声学模型及应用                                            53


             区目的层层段可考虑依据石英含量和黄铁矿含量                               [8] 廖东良, 肖立志, 张元春. 基于矿物组分与断裂韧度的页岩地
             分布来判断TOC的分布情况。基于超声波实验,分                               层脆性指数评价模型 [J]. 石油钻探技术, 2014, 42(4): 37–41.
                                                                   Liao Dongliang, Xiao Lizhi, Zhang Yuanchun. Evaluation
             析影响因素对岩石脆性的影响,并且根据实际资料
                                                                   model for shale brittleness index based on mineral content
             对声学特征进行描述。                                            and fracture toughness[J]. Petroleum Drilling Techniques,
                 (2) 基于弹性参数构建的脆性因子并结合岩石                            2014, 42(4): 37–41.
             断裂韧性指标,提出一种页岩储层的可压裂性评价                              [9] 侯冰, 陈勉, 王凯, 等. 页岩储层可压性评价关键指标体系 [J].
                                                                   石油化工高等学校学报, 2014, 27(6): 42–49.
             指数。利用叠前地震反演方法,采用经典的脆性评                                Hou Bing, Chen Mian, Wang Kai, et al. The key index
             价方法与新的可压裂性评价模型进行可压裂性预                                 system of fracability evaluation in gas shale reservior[J].
             测,结果显示新的可压裂性评价模型与实际工区产                                Journal of Petrochemical Universities, 2014, 27(6): 42–49.
                                                                [10] 高辉, 张晓, 何梦卿, 等. 基于测井数据体的页岩油储层可压
             期结果一致性较好,描述更为精细。新的可压裂性
                                                                   裂性评价研究 [J]. 地球物理学进展, 2018, 33(2): 603–612.
             模型能够更精确地预测页岩储层可压裂性,在未来                                Gao Hui, Zhang Xiao, He Mengqing, et al. Study on eval-
             不同地区的页岩气工程实践中将有较好的推广应                                 uation of shale oil reservoir fracability based on well log-
                                                                   ging data volume[J]. Progress in Geophysics, 2018, 33(2):
             用价值。
                                                                   603–612.
                                                                [11] 王淑芳, 邹才能, 董大忠, 等. 四川盆地富有机质页岩硅质生
                            参 考     文   献                          物成因及对页岩气开发的意义 [J]. 北京大学学报 (自然科学
              [1] 邹才能, 朱如凯, 吴松涛, 等. 常规与非常规油气聚集类型、特                 版), 2014, 50(3): 476–486.
                 征、机理及展望 —以中国致密油和致密气为例 [J]. 石油学报,                  Wang Shufang, Zou Caineng, Dong Dazhong, et al. Io-
                 2012, 33(2): 173–187.                             genic silica of organic-rich shale in Sichuan Basin and its
                 Zou Caineng, Zhu Rukai, Wu Songtao, et al. Types, char-  significance for shale gas[J]. Acta Scientiarum Naturalium
                 acteristics, genesis and prospects of conventional and un-  Universitatis Pekinensis, 2014, 50(3): 476–486.
                 conventional hydrocarbon accumulations: taking tight oil  [12] 刘子淳, 张峰, 李向阳, 等. 中国南方海相富有机质页岩弹性
                 and tight gas in China as an instance[J]. Acta Petrolei  各向异性岩石物理实验研究 [C]. CPS/SEG 北京 2018 国际
                 Sinica, 2012, 33(2): 173–187.                     地球物理会议暨展览电子论文集, 2018.
              [2] Chong K K, Grieser W V, Passman A, et al. A com-  [13] Guo M Q, Fu L Y, Ba J. Comparison of stress-associated
                 pletions guide book to shale-play development: a review  coda attenuation and intrinsic attenuation from ul-
                 of successful approaches toward shale-play stimulation in  trasonic measurements[J]. Geophysical Journal Interna-
                 the last two decades[C]. Canadian Unconventional Re-  tional, 2009, 178(1): 447–456.
                 sources and International Petroleum Conference. Society  [14] 王欢. 致密砂动、静态岩石物理特征实验研究 [D]. 成都: 成都
                 of Petroleum Engineers, 2010.                     理工大学, 2016.
              [3] 李庆辉, 陈勉, 金衍, 等. 页岩脆性的室内评价方法及改进 [J].           [15] Guo Z, Li X Y, Liu C, et al. A shale rock physics model
                 岩石力学与工程学报, 2012, 31(8): 1680–1685.                for analysis of brittleness index, mineralogy and porosity
                 Li Qinghui, Chen Mian, Jin Yan, et al. Indoor evaluation  in the Barnett Shale[J]. Journal of Geophysics and Engi-
                 method for shale brittleness and improvement[J]. Chinese  neering, 2013, 10(2): 025006.
                 Journal of Rock Mechanics and Engineering, 2012, 31(8):  [16] 边会媛, 王飞, 张永浩, 等. 储层条件下致密砂岩动静态弹性
                 1680–1685.                                        力学参数实验研究 [J]. 岩石力学与工程学报, 2015, 34(S1):
              [4] Breyer J A. Shale reservoirs:  giant resources for the  3045–3054.
                 21st century[M]. Oklahoma:  American Association of  Bian Huiyuan, Wang Fei, Zhang Yonghao, et al. Exper-
                 Petroleum Geologist, 2012: 1–20.                  imental study of dynamic and static elastic parameters
              [5] 唐颖, 邢云, 李乐忠, 等. 页岩储层可压裂性影响因素及评价                  of tight sandstones under reservoir conditions[J]. Chinese
                 方法 [J]. 地学前缘, 2012, 19(5): 356–363.               Journal of Rock Mechanics and Engineering, 2015, 34(S1):
                 Tang Ying, Xing Yun, Li Lezhong, et al. Influence fac-  3045–3054.
                 tors and evaluation methods of the gas shale fracability[J].  [17] 陈治喜, 陈勉, 金衍, 等. 岩石 K1c 的测试及其与声波速度的
                 Earth Science Frontiers, 2012, 19(5): 356–363.    关系 [C]. 中国岩石力学与工程学会第四次学术大会, 1996.
              [6] 袁俊亮, 邓金根, 张定宇, 等. 页岩气储层可压裂性评价技                [18] Rickman R, Mullen M, Petre E, et al. A practical use of
                 术 [J]. 石油学报, 2013, 34(3): 523–527.                shale petrophysics for stimulation design optimization: all
                 Yuan Junliang, Deng Jingen, Zhang Dingyu, et al. Fra-  shale plays are not clones of the Barnett shale[C]//SPE
                 cability evaluation of shale-gas reservoirs[J]. Acta Petrolei  Annual Technical Conference and Exhibition. Colorado,
                 Sinica, 2013, 34(3): 523–527.                     USA: Society of Petroleum Engineers, 2008.
              [7] 李文阳, 邹洪岚, 吴纯忠, 等. 从工程技术角度浅析页岩气的               [19] 张军华, 黄广谭, 李军, 等. 基于层次分析法的地震有利储层
                 开采 [J]. 石油学报, 2013, 34(6): 1218–1224.             预测 [J]. 特种油气藏, 2015, 22(5): 23–27, 152.
                 Li Wenyang, Zou Honglan, Wu Chunzhong, et al. An  Zhang Junhua, Huang Guangtan, Li Jun, et al. Seismic
                 analysis of shale gas development in view of engineer-  favorable reservoir prediction based on analytic hierar-
                 ing technologies[J]. Acta Petrolei Sinica, 2013, 34(6):  chy process[J]. Special Oil & Gas Reservoirs, 2015, 22(5):
                 1218–1224.                                        23–27, 152.
   52   53   54   55   56   57   58   59   60   61   62