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基于直升机航空重力同步地形的布格改正处理

屈进红, 姜作喜, 周锡华, 王明, 罗锋. 2023. 基于直升机航空重力同步地形的布格改正处理. 物探与化探, 47(2): 447-457. doi: 10.11720/wtyht.2023.1289
引用本文: 屈进红, 姜作喜, 周锡华, 王明, 罗锋. 2023. 基于直升机航空重力同步地形的布格改正处理. 物探与化探, 47(2): 447-457. doi: 10.11720/wtyht.2023.1289
QU Jin-Hong, JIANG Zuo-Xi, ZHOU Xi-Hua, WANG Ming, LUO Feng. 2023. Airborne Bouguer gravity based on synchronous terrains surveyed using helicopter airborne gravimetry. Geophysical and Geochemical Exploration, 47(2): 447-457. doi: 10.11720/wtyht.2023.1289
Citation: QU Jin-Hong, JIANG Zuo-Xi, ZHOU Xi-Hua, WANG Ming, LUO Feng. 2023. Airborne Bouguer gravity based on synchronous terrains surveyed using helicopter airborne gravimetry. Geophysical and Geochemical Exploration, 47(2): 447-457. doi: 10.11720/wtyht.2023.1289

基于直升机航空重力同步地形的布格改正处理

  • 基金项目:

    国家重点研发计划课题(2017YFC0601705)

    国家重点研发计划课题(2017YFC0601706)

详细信息
    作者简介: 屈进红(1981-),男,正高级工程师,主要从事航空重力测量与方法技术研究
  • 中图分类号: P631.1

Airborne Bouguer gravity based on synchronous terrains surveyed using helicopter airborne gravimetry

  • 重点勘探区内大规模的采矿活动从未间断过,矿山采空区、排土场和尾矿库等处在不断形变过程中。仍依靠搜集数字地形的方式,无法做到地形数据与航空重力测量数据的良好匹配,给航空重力地形改正和中间层改正带来极大的改正误差。本文通过直升机重磁测量系统的飞行GNSS大地高与无线电离地高度进行求差,再转换到正常高,最后经过调平和精细化处理获得同步实测地形。又与搜集的多种地形数据一起对比ICESat-2/ATL08星载激光高程,实测地形Wxd100和Wxd400的高程精度分别为5.33 m和8.93 m。使用实测地形进行航空重力布格改正后,矿区和多条典型测线的数据质量有了明显改善。
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  • [1]

    熊盛青, 周锡华, 郭志宏, 等. 航空重力勘探理论方法及应用[M]. 北京: 地质出版社, 2010.

    [2]

    Xiong S Q, Zhou X H, Guo Z H, et al. Theory,method and application of the airborne gravity processing[M]. Beijing: Geological Publishing House, 2010.

    [3]

    William R G. An historical review of airborne gravity[J]. The Leading Edge, 1998(l):113-116.

    [4]

    吴美平, 张开东. 基于捷联惯性导航系统/差分全球定位系统的航空重力测量技术[J]. 科技导报, 2007, 25(17):74-80.

    [5]

    Wu M P, Zhang K D. Technology of airborne gravimetry based on SINS/DGPS[J]. Science & Technology Review, 2007, 25(17):74-80.

    [6]

    Verdun J, Bayer R, Klingelé E E, et al. Airborne gravity measurements over mountainous areas by using a Lacoste & Romberg air-sea gravity meter[J]. Geophysics, 2002, 67(3):807-816.

    [7]

    Bell R, Coakley B, Stemp R. Airborne gravimetry from a small twin engine aircraft over the long island sound[J]. Geophysics, 1991, 56(9):1486-1493.

    [8]

    Schwarz K P, Colombo O, Hein G, et al. Requirements for airborne vector gravimetry[C]// From Mars to Greenland: Charting Gravity with Space and Airborne Instruments, 1992.

    [9]

    Studinger M, Bell R, Frearson N. Comparison of AIRGrav and GT-1A airborne gravimeters for research applications[J]. Geophysics, 2008, 73(6):151-161.

    [10]

    Olson D. GT-1A and GT-2A airborne gravimeters:Improvements in design,operation,and processing from 2003 to 2010[C]// Aiborne Gravity 2010-Abstracts from the ASEG-PESA Airborne Gravity 2010 Workshop, 2010.

    [11]

    Rodríguez E, Morris C S, Belz J E. A global assessment of the SRTM performance[J]. Photogrammetric Engineering and Remote Sensing, 2006, 72(3):249-260.

    [12]

    Tadono T, Ishida H, Oda F, et al. Precise global DEM generation by ALOS PRISM[J]. ISPRS Annals of the Photogrammetry,Remote Sensing and Spatial Information Sciences, 2014, 2(4):71-76.

    [13]

    程鹏飞, 文汉江, 成英燕, 等. 2000国家大地坐标系椭球参数与GRS80和WGS84的比较[J]. 测绘学报, 2009, 38(3):189-194.

    [14]

    Cheng P F, Wen H J, Cheng Y Y, et al. Parameters of the CGCS 2000 ellipsoid and comparisons with GRS 80 and WGS 84[J]. Acta Geodaetica et Cartograohica Sinica, 2009, 38(3):189-194.

    [15]

    焦文海, 魏子卿, 马欣, 等. 1985国家高程基准相对于大地水准面的垂直偏差[J]. 测绘学报, 2002, 31(3):196-200.

    [16]

    Jiao W H, Wei Z Q, Ma X, et al. The orgin vertical shift of national height datum 1985 with respect to the geoidal surface[J]. Acta Geodaetica et Cartograohica Sinica, 2002, 31(3):196-200.

    [17]

    郭海荣, 焦文海, 杨元喜. 1985国家高程基准与全球似大地水准面之间的系统差及其分布规律[J]. 测绘学报, 2004, 33(2):100-104.

    [18]

    Guo H R, Jiao W H, Yang Y X. The systematic difference and its distribution between the 1985 national height datum and the global quasigeoid[J]. Acta Geodaetica et Cartograohica Sinica, 2004, 33(2):100-104.

    [19]

    赫林, 李建成, 褚永海. 1985国家高程基准与全球高程基准之间的垂直偏差[J]. 测绘学报, 2016, 45(7):768-774.

    [20]

    He L, Li J C, Chu Y H. The vertical shift between 1985 national height datum and global vertica datum[J]. Acta Geodaetica et Cartograohica Sinica, 2016, 45(7):768-774.

    [21]

    李建成, 褚永海, 徐新禹. 区域与全球高程基准差异的确定[J]. 测绘学报, 2017, 46(10):64-75.

    [22]

    Li J C, Chu Y H, Xu X Y. Determination of vertical datum offset between the regional and the global height datum[J]. Acta Geodaetica et Cartograohica Sinica, 2017, 46(10):64-75.

    [23]

    孙中苗, 李迎春. 航空重力测量中激光测高数据的处理与应用[J]. 测绘通报, 2003(11):11-13.

    [24]

    Sun Z M, Li Y C. Laser altimetric data for airborne gravimetry:processing and application[J]. Bulletion of Surveying and Mapping, 2003(11):11-13.

    [25]

    Foster M R, Jines W R, Van d W K. Statistical estimation of systematic errors at intersections of lines of aeromagnetic survey data[J]. Journal of Geophysical Research Atmospheres, 1970, 75(8):1507-1511.

    [26]

    Yarger H L, Robertson R R, Wentlandet R L. Diurnal drift removal from aeromagnetic data using least squares[J]. Geophysics, 1978, 43(6):1148-1156.

    [27]

    Green A A. A comparison of adjustment procedures for leveling aeromagnetic survey data[J]. Geophysics, 1983, 48(6):745-753.

    [28]

    Minty B R S. Simple Micro-leveling for aeromagnetic data[J]. Exploration Geophysics, 1991, 22(4):591-592

    [29]

    Ferraccioli F, Gambetta M, Bozzo E. Microlevelling procedures applied to regional aeromagnetic data:An example from the transantarctic mountains (Antarctica)[J]. Geophysical Prospecting, 1998, 46(2):177-196.

    [30]

    Naudy H, Dreyer H. Essai de filtrage non-iineaire applique aux profils aeromagnetiques[J]. Geophysical Prospectiong, 1968(2):171-178.

    [31]

    骆遥, 王平, 段树岭, 等. 航磁垂直梯度调整ΔT水平方法研究[J]. 地球物理学报, 2012, 55(11):3854-3861.

    [32]

    Luo Y, Wang P, Duan S L, et al. Leveling total field aeromagnetic data with measured vertical gradient[J]. Chinese Journal of Geophysics, 2012, 55(11):3854-3861.

    [33]

    于长春, 熊盛青, 董继国. 数字地形模型数据获取方法及精度分析[J]. 物探与化探, 2001, 25(3):198-202.

    [34]

    Yu C C, Xiong S Q, Dong J G. The technique for acquisition of DTM data and an analysis of its precision[J]. Geophysical and Geochemical Exploration, 2001, 25(3):198-202.

    [35]

    郭志宏, 熊盛青, 周坚鑫, 等. 航空重力重复线测试数据质量评价方法研究[J]. 地球物理学报, 2008, 51(5):1538-1543.

    [36]

    Guo Z H, Xiong S Q, Zhou J X, et al. The research on quality evaluation method of test repeat lines in airborne gravity survey[J]. Chinese Journal of Geophysics, 2008, 51(5):1538-1543.

    [37]

    屈进红, 姜作喜, 周锡华, 等. 航空重力测网交叉点的非遍历逼近方法[J]. 测绘学报, 2022, 51(1):71-79.

    [38]

    Qu J H, Jiang Z X, Zhou X H, et al. Non-ergodic approximation method for intersections of airborne gravity survey network[J]. Acta Geodaetica et Cartograohica Sinica, 2022, 51(1):71-79.

    [39]

    中华人民共和国自然资源部. DZ/T 0381—2021. 航空重力测量技术规范[S]. 北京: 地质出版社, 2021.

    [40]

    Ministry of Natural Resources of the People's Republic of China. DZ/T 0381—2021. Specification for airborne gravity survey[S]. Beijing: Geological Publishing House, 2021.

    [41]

    Markus T, Neumann T A, Martino A J, et al. The ice,cloud and land elevation satellite-2 (ICESat-2):Science requirements,concept and implementation[J]. Remote Sensing of Environment, 2017, 190:270-273.

    [42]

    夏少波, 王成, 习晓环, 等. ICESat-2机载试验点云滤波及植被高度反演[J]. 遥感学报, 2014, 18(6):1199-1207.

    [43]

    Xia S B, Wang C, Xi X H, et al. Point cloud filtering and tree height estimation using airborne experiment data of ICESat-2[J]. Journal of Remote Sensing, 2014, 18(6):1199-1207.

    [44]

    王密, 韦钰, 杨博, 等. ICESat-2/ATLAS全球高程控制点提取与分析[J]. 武汉大学学报:信息科学版, 2021, 46(2):184-192.

    [45]

    Wang M, Wei Y, Yang B, et al. Extraction and analysis of global elevation control points from ICESat-2/ATLAS data[J]. Geomatics and Information Science of Wuhan University, 2021, 46(2):184-192.

    [46]

    中华人民共和国国土资源部. DZ/T 0004—2015.重力调查技术规范(1:50000)[S]. 北京: 地质出版社, 2015.

    [47]

    Ministry of Land and Resources of the People’s Republic of China. DZ/T 0004—2015.The technical specification for gravity survey(1:50000)[S]. Beijing: Geological Publishing House, 2015.

    [48]

    孙中苗. 航空重力测量理论、方法及应用研究[D]. 郑州: 中国人民解放军信息工程大学, 2004.

    [49]

    Sun Z M. Theory,methods and application of airborne gravimetry[D]. Zhengzhou: Information Engineering University, 2004.

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出版历程
收稿日期:  2022-06-10
修回日期:  2023-04-20
刊出日期:  2023-04-27

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