APPLIED GEOPHYSICS
 
        首页  |  版权声明  |  期刊介绍  |  编 委 会  |  收录情况  |  期刊订阅  |  下载中心  |  联系我们  |  English
应用地球物理  2015, Vol. 12 Issue (3): 432-440    DOI: 10.1007/s11770-015-0493-1
论文 最新目录 | 下期目录 | 过刊浏览 | 高级检索 Previous Articles  |  Next Articles  
叠前地震衰减各向异性的裂缝预测方法及应用
安勇1,2
1. 中国石油大学油气资源与探测国家重点实验室,北京 102249
2. 中国石油大学CNPC物探重点实验室,北京 102249
Fracture prediction using prestack Q calculation and attenuation anisotropy
An Yong1,2
1. State Key Laboratory of Petroleum Resources and Prospecting, China University of Petroleum, Beijing 102249, China.
2. CNPC Key Laboratory of Geophysical Prospecting, China University of Petroleum, Beijing 102249, China.
 全文: PDF (1112 KB)   HTML ( KB)   输出: BibTeX | EndNote (RIS)      背景资料
摘要 储层的裂缝分析在油气勘探中已变得愈来愈重要。品质因子Q值是表征地下介质对地震波吸收衰减特性的一个重要参数,不仅能够反映介质内部的本质特征,同时也可用于裂缝识别。在储层地震属性和反演中,地震叠前资料比叠后资料包含更加丰富的储层信息,因此,利用叠前地震道集进行吸收衰减参数提取能够进一步提高衰减系数估算的准确性。本文提出了一种在改进S变换基础上利用叠前地震CMP道集资料提取品质因子Q的方法。改进的叠前Q提取方法,首先是利用时频分辨率可调的改进S变换对叠前CMP道集进行时频分析,推导了利用改进S变换的频谱比法计算公式,其次采用能谱密度比替代传统的振幅比来逐道求取估算Q值的频谱比的斜率;然后建立谱比斜率与炮检距之间的关系式,采用多道拟合的方法消除炮检距影响,从叠前地震道集资料中提取准确的品质因子Q。最后本文把该叠前Q值计算方法引入到前进潜山储层裂缝预测中,纵波吸收衰减的各向异性具有好的实际应用效果。
服务
把本文推荐给朋友
加入我的书架
加入引用管理器
E-mail Alert
RSS
作者相关文章
安勇
关键词裂缝   衰减   品质因子   改进S变换   CMP道集     
Abstract: The analysis of fractured reservoirs is very important to hydrocarbon exploration. The quality factor Q is a parameter used to characterize the attenuation of seismic waves in subsurface media. Q not only reflects the inherent properties of the medium but also is used to make predictions regarding reservoir fractures. Compared with poststack seismic data, prestack seismic data contain detailed stratigraphic information of seismic attributes and data inversion in reservoirs. The extraction of absorption parameters from prestack data improves the accuracy of attenuation estimates. In this study, I present a new method for calculating Q based on the modified S transform (MST) using common midpoint (CMP) preprocessed gathers. First, I use the MST with adjustable time–frequency resolution to carry out a high-precision time–frequency analysis of prestack CMP gathers and derive the calculation formula for the improved S transform-based frequency spectrum ratio method. Then, I use the energy density ratio to calculate the slope of the frequency spectrum ratio instead of the conventional amplitude ratio. Thus, I establish the relation between the slope of the spectrum ratio and offset as well as eliminate the offset effect by multichannel linear fitting, obtaining accurate Q values from seismic prestack data. Finally, I use the proposed prestack Q extraction method to study the fractured reservoir in Qianjin burried hill and P-wave absorption and attenuation anisotropy with good results in the fracture characterization.
Key wordsFracture   attenuation   quality factor   MST   CMP gather   
收稿日期: 2015-02-16;
基金资助:

本研究由国家科技油气重大专项课题(编号:2011ZX05019008-011)、国家“973”项目(编号:2013CB228600)和中国石油大学(北京)科研基金(编号:KYJJ2012-05-10)联合资助。

引用本文:   
安勇. 叠前地震衰减各向异性的裂缝预测方法及应用[J]. 应用地球物理, 2015, 12(3): 432-440.
An Yong. Fracture prediction using prestack Q calculation and attenuation anisotropy[J]. APPLIED GEOPHYSICS, 2015, 12(3): 432-440.
 
[1] Al- Marzoug, A., Neves, F. A., Kim, J. J., and Nebrija, E., 2006, P-wave anisotropy from azimuthal AVO and velocity estimates using 3D seismic data from Saudi Arabia: Geophysics, 71(2), E7-E11.
[2] Askari, R., and Hejazi, S. H., 2014, Estimation of surface-wave group velocity using slant stack in the generalized S-transform domain: Geophysics, 80(4), EN83-EN92.
[3] Bath, M., 1974, Spectral analysis in geophysics: Developments in solid Earth geophysics, vol. 7: Elsevier.
[4] Behura, J., Tsvankin, I., Jenner, E., and Calvert, A., 2012, Estimation of interval velocity and attenuation anisotropy from reflection data at Coronation Field: The Leading Edge, 31(5), 580-587.
[5] Clark, R. A., Benson, P. M., Carter, A. J., and Moreno, C. A. G., 2009, Anisotropic P-wave attenuation measured from a multi-azimuth surface seismic reflection survey: Geophysical Prospecting, 57, 835-845.
[6] Dasgupta, R., and Clark, R. A., 1998, Estimation of Q from surface seismic reflection data: Geophysics, 63(6), 2120-2128.
[7] Ekanem, A. M., Wei, J., Wang, S., Di, B., Li, X., and Chapman, M., 2009, Fracture detection using 2-D P-wave seismic data: A seismic physical modelling study: 79th SEG Annual Meeting, Expanded Abstracts, 2647-2651, Houston, USA.
[8] Engelhard, L., 1996, Determination of the seismic wave attenuation by complex trace analysis: Geophysical Journal International, 125(2), 608-622.
[9] Futterman, W. I., 1962, Dispersive body waves: Journal of Geophysical Research, 67(13), 5279-5291.
[10] Li, D., and Castagna, J., 2013, Modified S-transform in time-frequency analysis of seismic data: 83rd Ann. Internat. Mtg., Soc. Explor. Geophys., Expanded Abstracts, 4629-4634.
[11] Liu, E., Maultzsch, S., Chapman, M., Li, X., Queen, J., and Zhang, Z., 2003, Frequency-dependent seismic anisotropy and its implication for estimating fracture size in low porosity reservoirs, The Leading Edge, 22(7), 662-665.
[12] Qu, S. L., Ji, Y. X., Wang, X., Wang, X. L., Chen, X. R., and Shen, G. Q., 2007, Fracture detection by using full azimuth P wave attributes: Applied Geophysics, 4(3), 238-243.
[13] Quan, Y. L., and Harrisy, J. M., 1997, Seismic attenuation tomography using the frequency shift method: Geophysics, 62(3), 895-905.
[14] Reine, C. M., van der Baan, and Clark, R., 2009, The robustness of seismic attenuation measurements using fixed- and variable-window timefrequency transforms: Geophysics, 74(2), WA123-WA135.
[15] Ruger, A., 1998, Variation of P-wave reflectivity with offset and azimuth in anisotropic media: Geophysics, 63(3), 935-947.
[16] Schoenberg, M. A., Dean, S., and Sayers, C. M., 1999, Azimuth dependent turning of seismic waves reflected from fractured reservoirs: Geophysics, 64(4), 1160-1171.
[17] Shen, F., Sierra, J., Burns, D. R., and Toksöz, M. N., 2002, Azimuthal offsetdependent attributes applied to fracture detection in a carbonate reservoir: Geophysics, 67(2), 355-364.
[18] Shekar, B., and Tsvankin, I., 2012, Anisotropic attenuation analysis of crosshole data generated during hydraulic fracturing: The Leading Edge, 31(5), 588-593.
[19] Stockwell, R. G., Mansinha, L., and Lowe, R. P., 1996, Localization of the complex spectrum: The Stransform: IEEE Transactions on Signal Processing, 44(4), 998-1001
[20] Wang, Z. J., Cao, S. Y., Zhang, H. R., Qu, Y. M., Yuan, D., Yang, J. H., and Shao, G. M., 2015, Estimation of quality factors by energy ratio method: Applied Geophysics, 12(1), 86-92.
[21] White, R. E., 1992, The accuracy of estimating Q from seismic data: Geophysics, 57(1), 1508−1511.
[22] Willis, M. E., Burns, D. R., Rao, R., Minsley, B., Toksöz, M. N., and Vetri, L., 2006, Spatial orientation and distribution of reservoir fractures from scattered seismic energy: Geophysics, 71(5), O43-O51.
[23] Zhang, C., and Ulrych, T. J., 2002, Estimation of quality factor from CMP records: Geophysics, 67(5), 1542-1547.
[24] Zheng, Y., Fang, X., Fehler, M. C., and Burns, D. R., 2013. Seismic characterization of fractured reservoirs by focusing Gaussian beams: Geophysics, 78(4), A23-28.
[1] 王浩,李宁,王才志,武宏亮,刘鹏,李雨生,刘英明,原野. 井旁裂缝对偶极横波反射波幅度影响分析*[J]. 应用地球物理, 2019, 16(1): 1-14.
[2] 马汝鹏,巴晶,Carcione J. M. ,周欣,李帆. 致密油岩石纵波频散及衰减特征研究:实验观测及理论模拟*[J]. 应用地球物理, 2019, 16(1): 36-49.
[3] 王恩江,刘洋,季玉新,陈天胜,刘韬. 粘滞声波方程Q值波形反演方法研究*[J]. 应用地球物理, 2019, 16(1): 83-98.
[4] 吴宗蔚,伍翊嘉,徐明华,郭思. 连续谱比斜率法叠前CMP道集Q值估计[J]. 应用地球物理, 2018, 15(3-4): 481-490.
[5] 段茜,刘向君. 气水两相裂缝型介质孔隙流体微观分布模式及其声学响应特性[J]. 应用地球物理, 2018, 15(2): 311-317.
[6] 王玲玲,魏建新,黄平,狄帮让,张福宏. 多尺度裂缝储层地震预测方法研究[J]. 应用地球物理, 2018, 15(2): 240-252.
[7] 郭桂红,闫建萍,张智,José Badal,程建武,石双虎,马亚维. 流体饱和孔隙定向裂缝储层中地震波衰减的模拟分析[J]. 应用地球物理, 2018, 15(2): 311-317.
[8] 李长征,杨勇,王锐,颜小飞. 黄河库区淤积泥沙特性的声学参数反演[J]. 应用地球物理, 2018, 15(1): 78-90.
[9] 赵玉敏,李国发,王伟,周振晓,唐博文,张文波. 基于数据驱动和反演策略的时空域随机噪声衰减方法[J]. 应用地球物理, 2017, 14(4): 543-550.
[10] 苏本玉,岳建华. 煤层导水裂缝带电各向异性特征研究[J]. 应用地球物理, 2017, 14(2): 216-224.
[11] 王万里,杨午阳,魏新建,何欣. 基于小波分频与径向道变换的联合压制面波方法[J]. 应用地球物理, 2017, 14(1): 96-104.
[12] 何怡原,胡天跃,何川,谭玉阳. TI介质中的P波衰减各向异性及其在裂缝参数反演中的应用[J]. 应用地球物理, 2016, 13(4): 649-657.
[13] 刘学清,王彦春,张贵宾,马胜利,成丽芳,余文武. 叠前FAGVO计算方法及应用[J]. 应用地球物理, 2016, 13(4): 641-648.
[14] Seyyed Ali Fa’al Rastegar, Abdolrahim Javaherian, Naser Keshavarz Farajkhah. 利用改进的共偏移距-共反射面(COCRS)叠加压制地滚波?[J]. 应用地球物理, 2016, 13(2): 353-363.
[15] 郭智奇,刘财,刘喜武,董宁,刘宇巍. 基于岩石物理模型的页岩油储层各向异性研究[J]. 应用地球物理, 2016, 13(2): 382-392.
版权所有 © 2011 应用地球物理
技术支持 北京玛格泰克科技发展有限公司