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A SYSTEMATIC APPROACH FOR MITIGATING GEOHAZARDS IN PIPELINE DESIGN AND CONSTRUCTION

机译:一种缓解管道设计与施工地质曲线的系统方法

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Pipeline projects are often faced with the challenge of balancing efficient design and construction with mitigation of potential hazards posed by low probability events, such as earthquakes and landslides. Though systematic characterization of geological hazards is sometimes perceived as an added project expense, failure to recognize and mitigate hazards at an early stage can lead to schedule delays and substantial liability, repair, and business interruption costs. For example, it is estimated that failure of the 660-mm Trans-Ecuador pipeline in the 1987 earthquake cost roughly $850 million in repairs and lost revenue. In order to minimize, mitigate, or avoid geological hazards, pipeline design projects can implement a phased investigative approach to refine route selection and develop parameters for detailed design. These studies provide information on geological conditions that progress from the general to specific and have associated uncertainties that decrease with increasing focus of investigations. A geohazard investigation for a pipeline project should begin with a Phase I "desk-top" study to evaluate regional geological conditions, establish a project specific information system, and make a preliminary assessment of landslide, fault rupture, liquefaction, geotechnical and constructability issues that will need to be considered in later phases of design and construction. Although the results of desk-top studies are limited and have large associated uncertainties, the initial results help to refine route selection and/or identify areas that may require hazard mitigation measures. Phase II investigations include acquisition of detailed corridor specific data such as topography and aerial photography, development of geological strip maps, and assessment of the pipeline corridor by an expert-level Terrain Evaluation Team (TET) with broad knowledge of geo-engineering issues. Assessment of the corridor by the TET results in recommendations for route refinement to avoid hazardous terrain, and identification of areas requiring detailed Phase III investigations. Phase III consists of detailed investigations of critical geohazard features to develop parameters for final design of hazard mitigation measures (e.g. fault crossing design). The geohazard features are characterized to determine permanent ground deformation (PGD) parameters such as location, geometry, amount and direction of displacement, and recurrence rates. Interaction with the pipeline design team should be continued through all three phases to maximize efficiency and ensure timely integration of results in route selection, refinement and design. Examples provided from projects in Turkey, California, and the Indian Ocean demonstrate the successful implementation of this phased investigative approach to characterizing and mitigating geohazards for both onshore and offshore pipeline projects. Implementation of this approach has resulted in significant project cost savings and reduced risk.
机译:管道项目往往面临平衡高效设计和建设的挑战,减轻了低概率事件,如地震和山体滑坡所带来的潜在危害。虽然有时被视为地质灾害的系统特征,但有时被认为是增加的项目费用,未能在早期阶段识别和减轻危害,可能会导致延误和大量责任,维修和商业中断费用。例如,据估计,1987年的660毫米跨厄瓜多尔管道在1987年地震成本中的故障大约为8.5亿美元的维修和失去收入。为了最大限度地减少,减轻或避免地质灾害,管道设计项目可以实现分阶段的调查方法来细化路由选择和开发参数以了解详细设计。这些研究提供了关于从一般到特定的地质条件的信息,并具有随着越来越多的调查焦点而减少的相关不确定性。对管道项目的地质血清调查应以“桌面”研究开始,以评估区域地质条件,建立一个项目特定信息系统,并对滑坡进行初步评估,故障破裂,液化,岩土技术和结构性问题需要考虑在后期的设计和建设阶段。虽然桌面研究的结果有限,但具有大的相关不确定性,但初始结果有助于改进途径选择和/或识别可能需要危害缓解措施的区域。第二阶段调查包括收购详细的走廊特定数据,如地形和航拍地图,地质条地图的发展,并通过专家级地形评估团队(TET)评估具有广泛的地理工程问题的知识。 TET评估走廊的评估导致路由改进的建议,以避免危险地形,以及确定需要详细第三阶段调查的地区。第三阶段包括对临界地质曲集型特征的详细调查,以开发危害缓解措施最终设计参数(例如故障交叉设计)。地质血清特征的特征在于确定永久地面变形(PGD)参数,如位置,几何形状,量和位移量,以及复发率。应通过所有三个阶段继续与管道设计团队的互动,以最大限度地提高效率,并确保及时整合路由选择,细化和设计。来自加利福尼亚州土耳其和印度洋的项目提供的例子表明了这一序列调查方法的成功实施,以便在陆上和海上管道项目中表征和减轻地质血清曲线。这种方法的实施导致了重大的项目成本节省和风险降低。

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