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| Study on identification method of small faults in Xinji Mining Area |
| Pan Jichuan1, Chen Xinhong2, Li Hongming2 |
| 1. China University of Mining and Technology (Beijing) School of Earth Science and Surveying and Mapping Engineering , Beijing 100000, China; 2. China Coal Xinji Energy Corporation Ltd., Huainan 232000, China |
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Abstract Kouzidong Mine in Xinji Mining Area was taken as an example, in order to improve the interpretation accuracy of small faults, seismic attributes such as variance and curvature were extracted from the 3D seismic data volume, and ant tracking algorithm was used to enhance the fault traces. Compared with the actual exposed fault data, it is found that the "variance ant body" is better on identifying regional fracture features, and the curvature attribute has more advantages on characterizing fracture details. Therefore, a weighted average attribute fusion method was used to generate a "variance ant" + "curvature" fusion attribute body to reflect the fracture characteristics. It was verified that this method can not only effectively identify small faults with a fault distance of 3 to 5 m, but also clearly display the combination of small secondary faults with a distance of less than 3 m.
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| [ 1 ] 侯士宁,代 磊,张 凯,等. 陈四楼井田突水机理分析[ J ]. 煤田地质与勘探,2001( 4 ):35 - 36.
[ 2 ] 宋占全,魏国营. 薛湖井田小断层对煤与瓦斯突出的控制作用[ J ]. 煤矿安全,2017,48( 12 ):153 - 156.
[ 3 ] 杜少能. 三维地震二次处理精细解释技术在新集矿区的应用[ C ]//中国地质学会. 中国地质学会2015学术年会论文摘要汇编(下册),2015.
[ 4 ] 宋 劲. 地震属性在小断层及裂缝发育带预测中的应用[ J ]. 矿业安全与环保,2014,41( 2 ):32 - 34,40.
[ 5 ] 隆雨辰,李 俊,王志章,等. 综合蚂蚁体及曲率属性的断裂识别方法及应用[ J ]. 油气藏评价与开发,2017,7( 4 ):6 - 9,15.
[ 6 ] 卢志强,王 力,杨瑞召,等. 基于相干的精细断裂刻画技术在顺北地区的应用[ J ]. 天然气勘探与开发,2018,41( 3 ):20 - 25.
[ 7 ] 庄益明,宋利虎,刘镜竹. 蚂蚁追踪技术在三维地震精细解释中的应用——以淮北祁南煤矿82采区为例[ J ]. 煤田地质与勘探,2018,46( 2 ):173 - 176.
[ 8 ] 林建东,王 磊. 煤田三维地震资料解释中的方差体技术[ J ]. 中国煤田地质,2000( 4 ):58 - 60.
[ 9 ] Roberts A. Curvature attributes and their application to 3D interpreted horizons[ J ]. First Break, 2001, 19( 2 ), 85-100.
[ 10 ] Chopra S, Marfurt K J. Integration of coherence and volumetric curvature images[ J ]. The Leading Edge, 2010, 29( 9 ), 1 092 - 1 107.
[ 11 ] Randen T, Pedersen S I, Sonneland L. Automatic extraction of fault surfaces from three-dimensional seismic data[ C ]. Expanded Abstracts of 71st SEG Annual International Meeting, San Antonio, 2001, 20( 1 ): 551 - 555.
[ 12 ] Pedersen S I, Randen T, Sonneland L. Automatic fault extraction using artificial ants[ C ]. SEG Technical Program Expanded Abstracts, 2002, 21( 1 ): 512 - 515. |
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