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From Drone-Based Remote Sensing to Digital Outcrop Modeling: Integrated Workflow for Quantitative Outcrop Interpretation

机译:从基于无人机的遥感到数字露头建模:用于定量露头解释的集成工作流

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Oil and gas exploration applies numerical modeling techniques to understand the development of hydrocarbonbearingbasins and to provide quantitative subsurface models. The accuracy of any prediction depends on severalfactors, such as the modeling approach, data acquisition, and data interpretation. Unfortunately, in the oil and gasindustry the quantity of reliable data available to build models is very limited compared to the size of sedimentarybasins.Outcrops are valuable sources of information that should be used to characterize the subsurface. Unfortunately,we are far from achieving the objective of fully benefiting from outcrops. Despite the fact that an outcrop is directlyaccessible, its quantitative modeling and integration remain an issue. Usually, we organize field trips where severalexperienced geologists are involved to collect descriptive data from outcrops, which include rock samples, measuredsections, and photos. The outcomes from these field trips are mainly conceptual and qualitative models of thesurface geology without any quantitative impact on the subsurface modeling and characterization workflows.Moreover, accessibility to cliffs or canyons in any outcrop is a major safety obstacle when conducting field trips.The main goal of this work is to investigate and develop new technologies for high resolution 3D outcropmodeling (cm to mm scale). High resolution outcrop models will constitute a virtual dataset that a geologist can visitat any time from his desktop. The proposed solution for this challenge is to develop an integrated workflow forremote geological assessment based on drones and remote sensing technologies. The general workflow starts withthe selection of an area of interest using any geographic information system (GIS) to plan the flight route of theunmanned aerial vehicle (UAV). This is then followed by selection of the model type, for instance digital elevation,texture, and/or mineral composition as well as the required resolution. After acquiring the data using dronesequipped with the appropriate sensors, we proceed to data processing, where the acquired data is converted togeological models that geologists can use to study the outcrop. Finally, general-purpose software is used for outcropmodel visualization. This workflow was successfully applied to the Wadi Dirab outcrop in Central Saudi Arabia.
机译:油气勘探应用数值建模技术来了解含烃盆地的发展并提供定量的地下模型。任何预测的准确性都取决于几个因素,例如建模方法,数据采集和数据解释。不幸的是,在石油和天然气工业中,与沉积盆地的规模相比,可用于建立模型的可靠数据数量非常有限。露头是有价值的信息来源,应用于表征地下特征。不幸的是,我们距离实现充分从露头中受益的目标还很遥远。尽管可以直接访问露头,但其定量建模和集成仍然是一个问题。通常,我们组织实地考察,其中有几位经验丰富的地质学家参与其中,以从露头收集描述性数据,包括岩石样本,实测断面和照片。这些实地考察的结果主要是表面地质学的概念和定性模型,对地下建模和表征工作流程没有任何定量影响,此外,进行实地考察时,任何露头都能到达悬崖或峡谷是主要的安全障碍。这项工作的目的是研究和开发用于高分辨率3D露头建模(厘米到毫米比例尺)的新技术。高分辨率露头模型将构成一个虚拟数据集,地质学家可随时从其桌面访问该数据集。针对这一挑战提出的解决方案是基于无人机和遥感技术开发一个集成的工作流程,以进行远程地质评估。一般的工作流程始于使用任何地理信息系统(GIS)选择感兴趣区域以计划无人驾驶飞机(UAV)的飞行路线。然后,选择模型类型,例如数字高程,纹理和/或矿物成分以及所需的分辨率。在使用配备有适当传感器的无人机获取数据之后,我们进行数据处理,将获取的数据转换为地质模型,地质学家可以使用该模型来研究露头。最后,通用软件用于露头模型可视化。此工作流程已成功应用于沙特阿拉伯中部的Wadi Dirab露头。

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