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物探与化探  2021, Vol. 45 Issue (2): 403-412    DOI: 10.11720/wtyht.2021.1091
  方法研究·信息处理·仪器研制 本期目录 | 过刊浏览 | 高级检索 |
沿海滩涂区浅层地震不同类型激发震源适用性分析
张保卫1,2,3(), 岳航羽1,2,3(), 王凯1,3, 王小江1,3
1.中国地质科学院 地球物理地球化学勘查研究所,河北 廊坊 065000
2.中国地质调查局 地球物理调查中心,河北 廊坊 065000
3.国家现代地质勘查工程技术研究中心,河北 廊坊 065000
Applicability analysis on different types of sources for shallow seismic detection in coastal tidal flats
ZHANG Bao-Wei1,2,3(), YUE Hang-Yu1,2,3(), WANG Kai1,3, WANG Xiao-Jiang1,3
1. Institute of Geophysical and Geochemical Exploration,Chinese Academy of Geological Sciences,Langfang 065000,China
2. Geophysical Survey Center,CGS,Langfang 065000,China
3. National Center for Geological Exploration Technology,Langfang 065000,China
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摘要 

受复杂地表地质条件影响,沿海滩涂区地质调查程度较低,限制了相关地质调查方法技术的发展水平。浅层地震勘探技术在沿海滩涂地质调查中作用显著,但其勘探设备在沿海滩涂的适用性问题制约了地震探测数据采集工作,尤其体现在激发震源的适用性问题上。文中针对沿海滩涂复杂的地表地质条件,在满足探测要求的前提下,以提高地震记录分辨率和信噪比、提高施工效率为目的,选取了轻便灵活的夯击震源、锤击震源、落锤震源和电火花震源开展高精度地震探测激发震源适用性对比分析试验研究,通过对比分析不同震源激发的地震记录得出结论:电火花震源激发得到的单炮记录反射波频率高、频带宽、同相轴连续性好、探测深度深、信噪比高、受风噪干扰影响小,且可有效提高浅层地震数据采集施工效率。实际应用效果表明,电火花震源在沿海滩涂潮间带区浅层地震探测中的适用性较好。

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张保卫
岳航羽
王凯
王小江
关键词 沿海滩涂区地质调查锤击震源夯击震源落锤震源电火花震源    
Abstract

Affected by the complex surface geological conditions,the degree of geological survey in coastal tidal-flat areas is quite low,which limits the development level of relevant geological survey methods.Shallow seismic exploration technology plays an important role in the geological survey of coastal shoals.However,seismic data acquisition in this area is restricted by the applicability of exploration equipment,especially the source.In order to meet the detection requirement in coastal tidal flats and consider the complex near surface conditions,the authors carried out an experimental study of applicability analysis of shallow seismic sources,which also took the resolution,SNR and work efficiency into consideration.Light and flexible sources were selected in this paper,orderly including the tamping source,hammering source,drop-hammer source and sparker source.A comparison between different sources shows that spark source gets the best performance in such aspects as reflection wave frequency,frequency band,continuity in seismic events,detecting depth,SNR and noise resistance,which can also improve the acquisition efficiency of shallow seismic detection.The application result shows that spark source has a good applicability in shallow seismic detection for coastal tidal flats.

Key wordscoastal tidal flats    geological survey    hammering source    tamping source    drop-hammer source    sparker source
收稿日期: 2020-02-26      修回日期: 2021-01-13      出版日期: 2021-04-20
ZTFLH:  P631.4  
基金资助:国家重点研发计划项目(2018YFF01013504);中国地质调查局地质调查项目(DD20190556);中国地质调查局地质调查项目(DD20208001);中国地质调查局地质调查项目(DD20218002);物化探所中央财政科研项目结余资金项目(JY201703);物化探所中央级公益性科研院所基本科研业务费专项资金资助项目(AS2020Y02)
通讯作者: 岳航羽
作者简介: 张保卫(1980-),男,2007年毕业于长安大学,硕士,高级工程师,现主要从事地震勘探方法技术的研究工作。Email: zbaowei@mail.cgs.gov.cn
引用本文:   
张保卫, 岳航羽, 王凯, 王小江. 沿海滩涂区浅层地震不同类型激发震源适用性分析[J]. 物探与化探, 2021, 45(2): 403-412.
ZHANG Bao-Wei, YUE Hang-Yu, WANG Kai, WANG Xiao-Jiang. Applicability analysis on different types of sources for shallow seismic detection in coastal tidal flats. Geophysical and Geochemical Exploration, 2021, 45(2): 403-412.
链接本文:  
https://www.wutanyuhuatan.com/CN/10.11720/wtyht.2021.1091      或      https://www.wutanyuhuatan.com/CN/Y2021/V45/I2/403
Fig.1  沿海滩涂试验区位置
Fig.2  夯击震源(a)与锤击震源(b)激发的地震记录
Fig.3  锤击震源(a)与落锤震源(b)激发的地震记录
Fig.4  滩涂围垦区落锤震源(a)与电火花震源(b)激发的地震记录
Fig.5  弱风条件下落锤震源(a)与电火花震源(b)激发单炮记录对比
Fig.6  中等风力条件下落锤震源(a)与电火花震源(b)激发单炮记录对比
Fig.7  强风条件下落锤震源(a)与电火花震源(b)激发单炮记录对比
Fig.8  泥质滩涂区落锤震源(a)与电火花震源(b)激发单炮记录对比
Fig.9  落锤震源(a)和电火花震源(b)激发地震记录的频谱分析
Fig.10  落锤震源(a)和电火花震源(b)激发得到的反射地震时间剖面
[1] 沈永明, 冯年华, 周勤, 等. 江苏沿海滩涂围垦现状及其对环境的影响[J]. 海洋科学, 2006,30(10):39-43.
[1] Shen Y M, Feng N H, Zhou Q, et al. The status and its influence of reclamation on Jiangsu coast[J]. Marine Science, 2006,30(10):39-43.
[2] 张晓祥, 严长清, 徐盼, 等. 近代以来江苏沿海滩涂围垦历史演变研究[J]. 地理学报, 2013,68(11):1549-1558.
[2] Zhang X X, Yan C Q, Xu P, et al. Historical evolution of tidal flat reclamation in the Jiangsu coastal areas[J]. Acta Geographica Sinica, 2013,68(11):1549-1558.
[3] 陈诚. 南通海岸带滩涂开发类型选择与空间功能配置研究[J]. 地理科学, 2017,37(1):138-147.
[3] Chen C. Coastal tidal flat development mode choice and spatial configuration of different functional areas in Nantong coastal zones[J]. Scientia Geographica Sinica, 2017,37(1):138-147.
[4] 章志, 宋晓村, 邱宇, 等. 江苏沿海滩涂资源开发利用研究[J]. 海洋开发与管理, 2015,3:45-49.
[4] Zhang Z, Song X C, Qiu Y, et al. Study on development and utilization of coastal mudflat resources in Jiangsu[J]. Ocean Development and Management, 2015,3:45-49.
[5] 李丕龙, 宋玉龙, 王新红, 等. 滩浅海地区高精度地震勘探技术 [M]. 北京: 石油工业出版社, 2006.
[5] Li P L, Song Y L, Wang X H, et al. High-precision seismic exploration technology in shoals and shallow seas [M]. Beijing: Petroleum Industry Press, 2006.
[6] 陈浩林, 张保庆, 叶苑权, 等. 滩浅海地震勘探关键技术及其应用 [M]. 北京: 石油工业出版社, 2014.
[6] Chen H L, Zhang B Q, Ye Y Q, et al. Key techniques and applications of seismic exploration in shoals and shallow seas [M]. Beijing: Petroleum Industry Press, 2014.
[7] 崔汝国, 王彦春, 曹国滨, 等. 胜利油田滩浅海地区地震勘探技术[J]. 物探与化探, 2006,30(5):441-445.
[7] Cui R G, Wang Y C, Cao G B. The application of seismic exploration technique to the beach and shallow sea area of the Shengli Oilfield[J]. Geophysical and Geochemical Exploration, 2006,30(5):441-445.
[8] 崔汝国, 曹国滨. 垦东滩浅海地区地震勘探技术[J]. 石油地球物理勘探, 2008,43(s2):21-24.
[8] Cui R G, Cao G B. Seismic exploration technique in Kendong beach and shallow-sea area[J]. Oil Geophysical Prospecting, 2008,43(s2):21-24.
[9] 朱健, 王瑞雪. 滩浅海地震勘探几种常见问题探讨[J]. 复杂油气藏, 2012,5(2):32-35.
[9] Zhu J, Wang R X. Discussion of several common problems encountered in seismic exploration of paralic zone[J]. Complex Hydrocarbon Reservoirs, 2012,5(2):32-35.
[10] 陈新荣, 李继光, 顾庆雷, 等. 胜利青东5探区滩浅海资料处理技术[J]. 物探与化探, 2011,35(3):393-397.
[10] Chen X R, Li J G, Gu Q L, et al. Research on processing techniques for seismic data from the tidal zone and shallow water area of Qingdong5 exploration zone in the Shengli Oilfield[J]. Geophysical and Geochemical Exploration, 2011,35(3):393-397.
[11] 徐明才, 高景华, 刘建勋, 等. 城市地震勘探 [M]. 北京: 地质出版社, 2011.
[11] Xu M C, Gao J H, Liu J X, et al. Urban seismic exploration [M]. Beijing: Geological Publishing House, 2011.
[12] 张保卫, 张凯, 岳航羽, 等. 江苏滩涂区浅层地震探测方法技术应用[J]. 物探与化探, 2018,42(1):144-153.
[12] Zhang B W, Zhang K, Yue H Y, et al. Application of shallow seismic exploration method in Tidal-flat region of Jiangsu Province[J]. Geophysical and Geochemical Exploration, 2018,42(1):144-153.
[13] 岳航羽, 张保卫, 王凯, 等. 一种适用于沿海滩涂区的浅层高精度地震探测技术[J]. 物探与化探, 2019,43(6):1225-1235.
[13] Yue H Y, Zhang B W, Wang K, et al. A technology applies to shallow high-precision seismic detection in coastal tidal flats[J]. Geophysical and Geochemical Exploration, 2019,43(6):1225-1235.
[14] 左丽琼, 王彩会, 荆慧, 等. 综合物探方法在南通小洋口地区地热勘查中的应用[J]. 工程地球物理学报, 2016,13(1):122-129.
[14] Zuo L Q, Wang C H, Jing H, et al. The application of comprehensive geophysical prospecting method to geothermal prospecting in Xiaoyangkou of Nantong city in Jiangsu[J]. Chinese Journal of Engineering Geophysics, 2016,13(1):122-129.
[15] 顾勤平, 许汉刚, 赵启光, 等. 纵横波联合勘探应用于栟茶河断裂活动性的调查与研究[J]. 地震工程学报, 2017,39(4):774-780.
[15] Gu Q P, Xu H G, Zhao Q G, et al. Application of joint exploration with P-and Sh-waves to the investigation and research of Benchahe fault activity[J]. China Earthquake Engineering Journal, 2017,39(4):774-780.
[16] Gu Q P, Kang Q Q, Xu H G, et al. New evidence from shallow seismic surveys for Quarternary active of the Benchahe fault[J]. Journal of Geophysics and Engineering, 2018(15):1528-1541.
[17] 顾勤平, 杨浩, 赵启光, 等. 金坛—如皋断裂北东段浅层地震勘探新证据[J]. 地震地质, 2019,41(3):743-757.
[17] Gu Q P, Yang H, Zhao Q G, et al. New evidence on NE-segment of Jintan-Rugao fault discovered by shallow seismic exploration method[J]. Seismology and Geology, 2019,41(3):743-757.
[18] 岳航羽, 张凯, 王小江, 等. 陆域冻土区地震探测信号提取技术——以青海哈拉湖地区为例[J]. 物探与化探, 2017,41(6):1183-1189.
[18] Yue H Y, Zhang K, Wang X J, et al. Extraction technology of seismic detection signal in land permafrost area:a case study of Halahu area in Qinghai[J]. Geophysical and Geochemical Exploration, 2017,41(6):1183-1189.
[19] 聂碧波, 赵建明, 郦逸根, 等. 浅层地震勘探在城市活断层探测中的应用[J]. 工程地球物理学报, 2015,12(1):15-21.
[19] Nie B B, Zhao J M, Li Y G, et al. The comprehensive application of shallow seismic prospecting method to urban active fault detection[J]. Chinese Journal of Engineering Geophysics, 2015,12(1):15-21.
[20] Pujol J, Bartholomew M J, Mickelson A, et al. Shallow seismic detection of the fault zone associated with a high scarp in southwestern Montana[J]. Interpretation, 2015,3(1):25-41.
[21] Li D H, Liao H, Ding Z F, et al. Detection of the Shuangshi-Dachuan fault using shallow seismic reflection in the southern section of the Longmenshan fault zone[J]. Journal of Environmental and Engineering Geophysics, 2016,21(4):161-172.
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