3DKL v1.0:创建首个吉隆坡三维地质模型

Q3 Earth and Planetary Sciences
Marcus R. Dobbs, Q. A. Rosle, Dalila Ahmad, Helen F. Burke
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引用次数: 0

摘要

联合国可持续发展目标 11 的宗旨是使城市和人类住区具有包容性、安全性、复原力和可持续性。通过更好地了解城市环境中的地质特性和过程,并确保将这种了解融入城市发展,地球科学可以在实现这一目标的过程中发挥重要作用。这一过程中的一个关键步骤是提高非地质科学决策者对城市地质学的认识,以便在开发的各个阶段了解和考虑地下固有的风险和利益。三维地质模型是地质学家在这一过程中与政府和行业利益相关者沟通的有效工具。三维地质模型还可以提供一个框架,将地质数据和信息整合到建筑和城市信息模型中,从而促进更有效的基础设施和公用事业资产管理。本文介绍了一个由来自政府、行业和学术界的地质科学家组成的联合体所采用的建模工作流程,以提供首个吉隆坡三维地质模型--3DKL v1.0。建模工作流程包括:将现场勘查报告中的钻孔记录数字化,并将其存储在专用的支持地理空间的 SQLite 钻孔数据库中;使用 QGIS 软件查看和解释钻孔数据;使用 Groundhog Desktop 软件在建模区域生成多个正交方向的横截面剖面图;以及整合从解释的钻孔、地表数据和横截面剖面图中获得的信息,在 Leapfrog Geo 软件中生成三维地质模型。3DKL v1.0 版已经进行了概念验证:我们已经开发出一套工作流程,主要基于免费提供的软件,用于将以前在纸质记录中获取的钻孔信息转化为概念三维模型。建模过程还确定了需要加强地质知识和数据的领域,这样 3DKL 才能发挥潜力,为吉隆坡更具可持续性和复原力的城市发展提供支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
3DKL v1.0: Creating the first 3D geological model of Kuala Lumpur
The objective of UN Sustainable Development Goal 11 is to make cities and human settlements inclusive, safe, resilient and sustainable. Geoscience can play a significant role in achieving targets within this goal by developing a better understanding of geological properties and processes within urban environments, and by ensuring that this understanding is integrated into urban development. A key step in this process will be enhancing awareness of urban geology among non-geoscience decision-makers, so that inherent subsurface risks and benefits are understood and accounted for during all phases of development. Three-dimensional geological models are an effective tool for geologists to communicate with stakeholders in government and industry during that process. They can also provide a framework to enable geological data and information to be integrated into Building and City Information Models, and thus facilitate more effective infrastructure and utility asset management. This paper describes the modelling workflow adopted by a consortium of geoscientists from government, industry and academia to deliver the first 3D geological model of Kuala Lumpur – 3DKL v1.0. The modelling workflow involved: digitising borehole logs from site investigation reports and storing them in a dedicated geospatially-enabled SQLite borehole database; viewing and interpreting that borehole data using QGIS software; generating multiple orthogonally oriented cross-section profiles across the modelled area using Groundhog Desktop software; and integrating the information derived from the interpreted boreholes, surface data and cross-section profiles to generate a 3D geological model in Leapfrog Geo software. 3DKL v1.0 has demonstrated proof-of-concept: we have developed a workflow, based largely on freely-available software, for transforming borehole information, previously captured in paper records, into a conceptual 3D model. The modelling process has also identified areas where geological knowledge and data need to be enhanced if 3DKL is to fulfil its potential to support more sustainable and resilient urban development in Kuala Lumpur.
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来源期刊
Bulletin of the Geological Society of Malaysia
Bulletin of the Geological Society of Malaysia Earth and Planetary Sciences-Earth and Planetary Sciences (miscellaneous)
CiteScore
1.60
自引率
0.00%
发文量
15
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