APPLIED GEOPHYSICS
 
        Home  |  Copyright  |  About Journal  |  Editorial Board  |  Indexed-in  |  Subscriptions  |  Download  |  Contacts Us  |  中文
APPLIED GEOPHYSICS  2020, Vol. 17 Issue (4): 475-488    DOI: 10.1007/s11770-020-0835-5
article Current Issue | Next Issue | Archive | Adv Search  |  Next Articles  
Interval attenuation estimation from prestack seismic data: A case study from the Arabian Peninsula*
Abdullah Alshangiti and Hua-Wei Zhou
1.University of Houston, Department of Earth and Atmospheric Sciences, Houston, Texas, The United States
 Download: PDF (1927 KB)   HTML ( KB)   Export: BibTeX | EndNote (RIS)      Supporting Info
Abstract Accurately estimated interval attenuation (1/Q) values have several applications, such as in quantitative interpretation and seismic resolution enhancement. Although Q values can be estimated by measuring the spectral ratio between seismic reflections from a target and a reference reflector, the results are influenced by factors such as overburden inhomogeneities. Here, we quantitatively analyze the overburden influence on interval Q estimations using the spectral ratio method, time–space domain prestack Q inversion (PSQI), and τ-p domain PSQI. We compare these three methods using a synthetic dataset and a field dataset acquired onshore the Arabian Peninsula. Synthetic seismic gathers are generated from a three-layer model with a low-Q inclusion in the first layer to mimic overburden inhomogeneity. The fi eld data are preconditioned image gathers from a producing oil fi eld. The synthetic data test shows that the small low-Q body produces a considerable error in estimated Q values. The smallest error (i.e., 13.3%) is in the τ-p domain PSQI result. Theoretically, τ-p domain PSQI could obtain more accurate Q values when there are overburden influences because of the simultaneous inversion scheme and the application in the τ-p domain. The fi eld data application also illustrates that the τ-p domain PSQI produces reasonable interval Q values. Our measured Q values are also comparable with the Q values estimated from hydrocarbon saturated carbonate reservoirs.
Service
E-mail this article
Add to my bookshelf
Add to citation manager
E-mail Alert
RSS
Articles by authors
Key wordsAttenuation   quality factor Q   overburden inhomogeneity   spectral ratio   prestack Q inversion     
Received: 2020-06-03;
Fund:

The research was funded by the Saudi Aramco.

Corresponding Authors: abdullah.shangiti@gmail.com   
 E-mail: abdullah.shangiti@gmail.com
About author: Abdullah Alshangiti received his BSc in Geophysics from King Abdulaziz University in 2006. In 2010, he was awarded an MSc degree with merit in Petroleum Geology and Geophysics from the University of Leeds. Abdullah worked as a seismic data processing geophysicist for the Geophysical Imaging Department at Saudi Aramco for 7 years before starting his Ph.D. program in 2017. He is currently a Ph.D. student in Geophysics at the University of Houston. His main research interests are seismic processing, inversion and attenuation estimation for quantitative interpretation, inverse Q-fi ltering.. Main and Corresponding Author: Mr. Abdullah Alshangiti, University of Houston, Department of Earth and Atmospheric Sciences, Houston, Texas, The United States (Email: abdullah.shangiti@gmail.com). Co-author: Dr. Hua-Wei Zhou, University of Houston, Department of Earth and Atmospheric Sciences, Houston, Texas, The United States (Email: hzhou@uh.edu).
Cite this article:   
. Interval attenuation estimation from prestack seismic data: A case study from the Arabian Peninsula*[J]. APPLIED GEOPHYSICS, 2020, 17(4): 475-488.
 
No references of article
[1] Tang Jie, Liu Ying-Chang, Wen Lei, and Li Cong. Time-reverse location of microseismic sources in viscoelastic orthotropic anisotropic medium based on attenuation compensation*[J]. APPLIED GEOPHYSICS, 2020, 17(4): 544-560.
[2] Liang Kai, Cao Dan-Ping, He Bing-Hong, and Wu Guo-Chen. Characterization for wave equations in viscoelastic media based on the constant Q property*[J]. APPLIED GEOPHYSICS, 2020, 17(4): 561-575.
[3] Zhang Rui-qi, Song Peng, Liu Bao-hua, Zhang Xiao-bo, Tan Jun, Zou Zhi-hui,Xie Chuang, and Wang Shao-wen. Low-frequency swell noise suppression based on U-Net*[J]. APPLIED GEOPHYSICS, 2020, 17(3): 419-431.
[4] Yang Wu-Yang, Wang Wei, Li Guo-Fa, Wei Xin-Jian, Wang Wan-Li, and Chen De-wu. Nonstationary signal inversion based on shaping regularization for random noise attenuation*[J]. APPLIED GEOPHYSICS, 2020, 17(3): 432-442.
[5] Gao Feng, Wei Jian-Xin, and Di Bang-Rang. Ultrasonic attenuation estimation based on time-frequency analysis*[J]. APPLIED GEOPHYSICS, 2019, 16(4): 415-429.
[6] Ma Ru-Peng, Ba Jing, Carcione José Maria, Zhou Xin, and Li Fan. Dispersion and attenuation of compressional waves in tight oil reservoirs: Experiments and simulations*[J]. APPLIED GEOPHYSICS, 2019, 16(1): 36-49.
[7] Wang En-Jiang, Liu Yang, Ji Yu-Xin, Chen Tian-Sheng, and Liu Tao. Q full-waveform inversion based on the viscoacoustic equation*[J]. APPLIED GEOPHYSICS, 2019, 16(1): 83-98.
[8] Tian Yu-Kun, Mei Yan-Hui, Cao Jie, Li Juan, Zhou Hui, Ma Yan-Yan. Experiments on excitation and data processing of low frequency vibroseis in permafrost area of Tibetan Plateau[J]. APPLIED GEOPHYSICS, 2018, 15(3-4(2)): 637-646.
[9] Wu Zong-Wei, Wu Yi-Jia, Guo Si, and Xu Ming-Hua. Q-factor estimation in CMP gather and the  continuous spectral ratio slope method[J]. APPLIED GEOPHYSICS, 2018, 15(3-4): 481-490.
[10] . Seismic prediction method of multiscale fractured reservoir[J]. APPLIED GEOPHYSICS, 2018, 15(2): 240-252.
[11] Guo Gui-Hong, Yan Jian-Ping, Zhang Zhi, José Badal, Cheng Jian-Wu, Shi Shuang-Hu, and Ma Ya-Wei. Numerical analysis of seismic wave propagation in fluid-saturated porous multifractured media[J]. APPLIED GEOPHYSICS, 2018, 15(2): 311-317.
[12] Li Chang-Zheng, Yang Yong, Wang Rui, Yan Xiao-Fei. Acoustic parameters inversion and sediment properties in the Yellow River reservoir[J]. APPLIED GEOPHYSICS, 2018, 15(1): 78-90.
[13] Zhao Yu-Min, Li Guo-Fa, Wang Wei, Zhou Zhen-Xiao, Tang Bo-Wen, Zhang Wen-Bo. Inversion-based data-driven time-space domain random noise attenuation method[J]. APPLIED GEOPHYSICS, 2017, 14(4): 543-550.
[14] Wang Wan-Li, Yang Wu-Yang, Wei Xin-Jian, He Xin. Ground roll wave suppression based on wavelet frequency division and radial trace transform[J]. APPLIED GEOPHYSICS, 2017, 14(1): 96-104.
[15] He Yi-Yuan, Hu Tian-Yue, He Chuan, Tan Yu-Yang. P-wave attenuation anisotropy in TI media and its application in fracture parameters inversion[J]. APPLIED GEOPHYSICS, 2016, 13(4): 649-657.
Copyright © 2011 APPLIED GEOPHYSICS
Support by Beijing Magtech Co.ltd support@magtech.com.cn