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世界超级洞穴苗厅“空-地-洞”一体化测量应用研究

周文龙 宋小庆 罗辑 李怀兵 杨家芳 赵世启 莫贵芬

周文龙,宋小庆,罗 辑,等. 世界超级洞穴苗厅“空-地-洞”一体化测量应用研究[J]. 中国岩溶,2026,45(3):1-14 doi: 10.11932/karst2026y001
引用本文: 周文龙,宋小庆,罗 辑,等. 世界超级洞穴苗厅“空-地-洞”一体化测量应用研究[J]. 中国岩溶,2026,45(3):1-14 doi: 10.11932/karst2026y001
ZHOU Wenlong, SONG Xiaoqing, LUO Ji, LI Huaibing, YANG Jiafang, ZHAO Shiqi, MO Guifen. Applied research on integrated 'Air-Ground-Cave' surveying of the World's Supercave, the Miao Chamber Cavern:A case study of the Ziyun Miao Chamber[J]. CARSOLOGICA SINICA. doi: 10.11932/karst2026y001
Citation: ZHOU Wenlong, SONG Xiaoqing, LUO Ji, LI Huaibing, YANG Jiafang, ZHAO Shiqi, MO Guifen. Applied research on integrated "Air-Ground-Cave" surveying of the World's Supercave, the Miao Chamber Cavern:A case study of the Ziyun Miao Chamber[J]. CARSOLOGICA SINICA. doi: 10.11932/karst2026y001

世界超级洞穴苗厅“空-地-洞”一体化测量应用研究

doi: 10.11932/karst2026y001
基金项目: 国家自然科学基金(42161001);贵州科学院2021年度学术新苗培养及自由探索创新专项;贵州省山地资源研究所创新能力建设项目(黔科山平台[2025]01号)。
详细信息
    作者简介:

    周文龙,(1984— ),男,硕士,高级工程师,主要从事洞穴与喀斯特方面的研究。E-mail:karstpro@hotmail.com

  • 中图分类号: K903;P931.5;P217

Applied research on integrated "Air-Ground-Cave" surveying of the World's Supercave, the Miao Chamber Cavern:A case study of the Ziyun Miao Chamber

  • 摘要: 紫云苗厅作为世界罕见的超级洞穴,其巨大的空间尺寸和复杂的地质结构给传统测量方法带来了巨大挑战。本文针对早期探测工作存在的不足,探索了“空-地-洞”一体化测量技术体系,通过集成无人机航测、地面激光扫描等多种先进测量技术,构建了完整的空间数据采集与多源数据融合配准处理体系,首次实现了对苗厅地表喀斯特与地下多层溶洞三维立体空间信息的高精度、全方位测量与融合配准,并进行技术总结与数据应用研究,得到如下结论(1)在2014年中-英联合科学考察测量工作的基础上,采用SLAM技术对此前苗厅点云偏差进行纠正,并结合RTK连接千寻CORS服务,赋予了整个苗厅绝对空间参考,为了重新认知苗厅的发育演化过程提供了可靠的数据支持;(2)结合已融合配准的空间立体信息,运用点云切片分析工具,可直观掌握地表喀斯特与地下多层溶洞之间的位置关系,通过对空间关系以及组合地貌形态的剖析,有助于进一步理解世界超级洞穴苗厅的发育成因以及与地表喀斯特之间的协同演化机制;(3)“空-地-洞”一体化测量可有效解决传统技术在巨型洞穴探测中的局限性,在实景复原地物特征的同时,显著提高了测绘精度;(4)苗厅发育主要受到4组不同方向、不同等级的节理控制,且目前相对稳定,其地表古水流流向至少分为中洞和小穿洞两路通行,现代地表径流仍可通过喀斯特管道和裂隙不同程度地补给苗厅;(5)“空-地-洞”一体化测量技术体系在紫云苗厅的成功应用,为以类似巨型地下空间和复杂地质结构为研究对象的地表-地下立体空间测量提供了新的范式。

     

  • 图  1  苗厅在格必河伏流洞穴系统的位置

    Figure  1.  The location of Miao Chamber within the subterranean flow cave system of the Gebihe River

    1  苗厅地表洞穴与喀斯特地貌组合

    1.  The combination of caves and karst landforms on the surface of the Miao Chamber

    图  2  技术路线图

    Figure  2.  Technical roadmap

    图  3  点云偏差纠正与绝对空间参考

    Figure  3.  Point cloud deviation correction and absolute spatial reference

    图  4  数据采集过程与点云融合配准效果

    Figure  4.  Data acquisition process and point cloud fusion registration results

    图  5  立体空间结构与组合地貌形态

    Figure  5.  3D spatial structure and composite geomorphological forms

    图  6  多层溶洞与地表峰丛之间的空间位置关系

    Figure  6.  The spatial position relationship between multi-layer karst caves and surface peak-clusters

    图  7  数字表面模型与古水流流向

    Figure  7.  Digital surface model and ancient water flow direction

    图  8  点云切片与地表径流关系

    Figure  8.  The relationship between point cloud slicing and surface runoff

    图  9  苗厅-钻石大厅发育与主要节理控制关系

    Figure  9.  The relationship between the development and main control joint of the Miao-Zuanshi Chambers

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