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A BIM-based framework for lift planning in topsides disassembly of offshore oil and gas platforms

机译:基于BIM的海上石油和天然气平台顶侧拆卸中举升计划的框架

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摘要

Offshore oil and gas platforms (OOGP5) usually have a lifetime of 30-40 years. An increasing number of OOGPs across the world will be retired and decommissioned in the coming decade. Therefore, a safe and efficient approach in planning the disassembly of the topsides of OOGPs is required. One commonly applied disassembly method is reverse installation, which moves the OOGP modules from the platform deck to a heavy lift vessel (HLV) in reverse order of their installation. Considering the high risk and cost of working offshore, shortening the lift time is crucial. In contrast to the traditional experience-driven lift operations, this paper describes minimizing the lift path for each OOGP module during disassembly, leveraging building information modeling (BIM) technology and an improved A* algorithm. BIM models provide accurate component-based geometric and semantic information that can be used for planning and optimization. However, there has been no previous study on the use of BIM for offshore disassembly. Industry Foundation Classes (IFC), which is a neutral data model of BIM, is used in this study to represent OOGP models. In particular, the IfcBuildingElementProxy entity is used to represent the OOGP components, and the information in IfcBuildingElementProxy is automatically extracted to obtain the location and dimension information of each OOGP module. Then, for a given layout of modules on the removal vessel, the lift path and removal sequence of different modules, with the shortest lift path distance, are obtained. The lift path distance is calculated using the A* algorithm, which has been widely applied in 2D environments and is modified in this study to suit the 3D environment. Finally, the genetic algorithm (GA) technique is applied to optimize the layout plan on the removal vessel by minimizing the total lift path distance. The developed BIM-based framework is illustrated and evaluated through an illustrative example. The results show that the proposed framework can generate and visualize the shortest lift path for each OOGP module directly and automatically, and significantly improve the efficiency of OOGP disassembly. (C) 2017 Elsevier B.V. All rights reserved.
机译:海上石油和天然气平台(OOGP5)的使用寿命通常为30-40年。在未来十年内,全世界越来越多的OOGP将被淘汰和退役。因此,需要一种安全有效的方法来计划OOGP顶部的拆卸。一种普遍应用的拆卸方法是反向安装,该安装方法将OOGP模块从安装平台的平台移到重型起重船(HLV),安装顺序相反。考虑到海上作业的高风险和成本,缩短升降时间至关重要。与传统的以经验为导向的电梯操作相反,本文介绍了利用建筑信息模型(BIM)技术和改进的A *算法在拆卸过程中最小化每个OOGP模块的电梯路径。 BIM模型提供了准确的基于组件的几何和语义信息,可用于计划和优化。但是,以前没有关于在海上拆卸中使用BIM的研究。本研究使用行业基础分类(IFC)作为BIM的中性数据模型来表示OOGP模型。特别是,IfcBuildingElementProxy实体用于表示OOGP组件,并且IfcBuildingElementProxy中的信息会自动提取以获得每个OOGP模块的位置和尺寸信息。然后,对于给定的拆卸容器上的模块布局,可以获得提升路径距离最短的提升路径和不同模块的拆卸顺序。提升路径距离是使用A *算法计算的,该算法已在2D环境中广泛应用,并且在本研究中进行了修改以适合3D环境。最后,应用遗传算法(GA)技术通过最小化总提升路径距离来优化拆卸船的布置计划。通过一个示例性的示例说明并评估了已开发的基于BIM的框架。结果表明,提出的框架可以直接自动生成和可视化每个OOGP模块的最短提升路径,并显着提高OOGP拆卸效率。 (C)2017 Elsevier B.V.保留所有权利。

著录项

  • 来源
    《Automation in construction》 |2017年第7期|19-30|共12页
  • 作者单位

    Hong Kong Univ Sci & Technol, Dept Civil & Environm Engn, Hong Kong, Hong Kong, Peoples R China;

    Curtin Univ, Sch Built Environm, Australasian Joint Res Ctr BIM, Bentley, WA, Australia;

    Curtin Univ, Sch Built Environm, Australasian Joint Res Ctr BIM, Bentley, WA, Australia;

    Curtin Univ, Sch Built Environm, Australasian Joint Res Ctr BIM, Bentley, WA, Australia;

    Hong Kong Univ Sci & Technol, Dept Civil & Environm Engn, Hong Kong, Hong Kong, Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    BIM; Layout optimization; Shortest lift path; Topsides disassembly; Visualization;

    机译:BIM;布局优化;最短的举升路径;顶部拆卸;可视化;

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