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物探与化探  2014, Vol. Issue (3): 552-557    DOI: 10.11720/wtyht.2014.3.24
  方法技术研究 本期目录 | 过刊浏览 | 高级检索 |
主动源勘探中震源编码与解码方法
唐杰, 肖广锐, 方兵
中国石油大学 地球科学与技术学院, 山东 青岛 266555
A study of encoding and decoding method in active seismic source exploration
Tang Jie, Xiao Guangrui, Fang Bin
School of Geosciences, China University of Petroleum, Qingdao 266555, China
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摘要 

依据人工主动震源的可控性,引入通讯中的编码原理,采用震源编码技术能够有效提高小当量人工震源的探测深度和信号接收距离。笔者分析研究了主动源勘探中的震源编码与解码方法,主要做了以下工作:①分析研究了震源信号自相关函数的基本性质,探讨了利用自相关函数峰值间的零值区进行信号检测的可能性,研究表明编码方法能够通过相关增加有效信息的检测范围,提高监测能力;②研究了震源编码的三种基本方式,分析了它们的旁瓣压制效果,通过不同激发能量的源在不同时刻重复激发建立编码震源,信号能够在相关峰值和相关旁瓣间有效检测出;③探讨了迭代相关法解码的基本原理,编码方法能够大幅度提高地震探测能力,利用小能量震源获得大的探测距离和高分辨率,具有很强的抗干扰能力。

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Abstract

According to the repeatability and controllability of artificial active source, encoding seismic source can be used effectively to improve the capability of artificial source exploration depth and detection distance. In this paper, the authors studied the encoding and decoding method of active seismic source exploration, and mainly did the following work: ① the analysis of the basic principles of encoding seismic source. The coded method can increase the range of the target and reduce side-lobe energy with correlation; ② the study of three source encoding methods, and make the comparison. The authors have designed coded source which can be fired repeatedly in different time intervals with different energies, and coded seismic source can reduce autocorrelation side-lobes. Signals can be detected with better sensitivity in the time interval after the first autocorrelation peak and before the first periodic side-lobe; ③ the study of the principle of iterative correlation method for decoding. The encoding method can significantly improve the seismic exploration capability. It is proved that researchers can obtain a large detection range and high resolution using encoding method with small energy source.

收稿日期: 2013-07-12      出版日期: 2014-06-10
:  P631.4  
基金资助:

国家自然科学基金(41374123),国家973项目(2013CB228604)与山东省自然科学基金(ZR2013DQ020)

作者简介: 唐杰(1980-),男,2008年博士毕业,现在中国石油大学(华东)任副教授,主要从事于人工地震探测及岩石物理学研究工作。
引用本文:   
唐杰, 肖广锐, 方兵. 主动源勘探中震源编码与解码方法[J]. 物探与化探, 2014, (3): 552-557.
Tang Jie, Xiao Guangrui, Fang Bin. A study of encoding and decoding method in active seismic source exploration. Geophysical and Geochemical Exploration, 2014, (3): 552-557.
链接本文:  
https://www.wutanyuhuatan.com/CN/10.11720/wtyht.2014.3.24      或      https://www.wutanyuhuatan.com/CN/Y2014/V/I3/552

[1] 陈颙,王宝善,葛洪魁,等.建立地震发射台的建议[J].地球科学进展, 2007,22(5):441-446

[2] Cook C E,Siebert W M.The early history of pulse compression radar[J].IEEE Transactions on Aerospace and Electronic Systems,1988,24:825-833.

[3] Freeman R L.Reference Manual for Telecommunications Engineering[M].Second Edition. John Wiley and Sons,1994.

[4] 唐杰,王宝善,葛洪魁,等.大容量气枪震源的实验与模拟研究[J].中国地震,2009,25(1):1-11。

[5] Barbier M G,Viallix J R.Sosie:A new tool for marine seismology[J].Geophysics,1973,38:673-683.

[6] Barbier M G,Bondon P,Mellinger R,et al.Mini-SOSIE for land seismology[J].Geophysical Prospecting,1976,24(3):518-527.

[7] Cook C E,Siebert W M.The early history of pulse compression radar[J].IEEE Transactions on Aerospace and Electronic Systems,1988,24:825-833.

[8] 唐杰,王宝善,葛洪魁,等.人工地震信号检测中相位信息的应用[J].大地测量与地球动力学,2009,29(3):74-76

[9] Askeland B,Hobaek H,Mjelde R.Marine seismics with a pulsed combustion source and Pseudo Noise codes[J].Marine Geophysical Researches,2007,28(2):109-117.

[10] Askeland B,Hob K H,Mjelde R.Semiperiodic chirp sequences reduce autocorrelation side lobes of pulsed signals[J].Geophysics,2008,73 (3):19-27.

[11] Aarseth I.Western Norwegian fjord sediments:Age,volume,stratigraphy,and role as temporary depository during glacial cycles[J].Marine Geology,1997,143,39-53.

[12] Tenghamn R,Long A.PGS shows off electrical marine vibrator to capture 'alternative' seismic source market[J].First Break,2006,24:33-36.

[13] 葛洪魁,林建民,王宝善,等.编码震源提高地震探测能力的野外实验研究[J].地球物理学报,2006,49(3):864-870.

[14] Tang Jie,Wang Baoshan,Ge Honkui,et al.Study of experiment and simulation of large capacity air-gun in deep structures exploration[J].Earthquake Research in China,2009,23(4):1-11.

[15] Chen Y,Liu L B,Ge H K,et al.Using an airgun array in a land reservoir as the seismic source for seismotectonic studies in northern China:experiments and preliminary results.Geophysical Prospecting,2007,56:601-612.

[16] Ziolkowski A M,Johnston R G K.Marine seismic sources:QC wavefield computation from near-field pressure measurements[J].Geophysical Prospecting,1997,45:611-639.

[17] Driml K,Reveleigh M,Bartlett K.Mini-SOSIE-successful shallow 3D seismic data acquisition in an environmentally sensitive area[J].ASEG 15th Geophysical Conference and Exhibition,2001.

[18] Cosma C,Enescu N.Characterization of fractured rock in the vicinity of tunnels by the swept impact seismic technique[J].International Journal of Rock Mechanics and Mining Sciences,2001,38:815-821.

[19] Park C B,Miller R D,Steeples D W,et al.Swept impulse seismic technique SIST[J].Geophysics,1996,61:1789-1803.

[20] 唐杰,王宝善,葛洪魁,等.小当量激发的远距离信号检测研究[J].地球物理学报,2008,51(6):1810-1818.

[21] 林君,陈鹏程,姜弢,等. 浅层地震探测的可控震源信号设计[J].地球物理学进展,2004,04:807-811.

[22] 赵岩.基于伪随机编码的夯击震源技术研究[D].长春:吉林大学,2010.

[23] 高健.可控震源编码激发技术研究[D].长春:吉林大学,2013.

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