通过数字孪生和标准化检查数据进行系泊完整性管理

Shunsaku Matsumoto, V. Jaiswal, T. Sugimura, Shintaro Honjo, Piotr Szalewski
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引用次数: 0

摘要

本文提出了一种系泊数字孪生框架和标准化检测数据模板的概念,以实现数字孪生。系泊数字孪生框架支持系泊完整性管理的实时和/或按需决策,通过有效的检查、监控、维修和加固,将故障风险降至最低,同时降低运营和维护成本。通过DeepStar项目18403进行的一项行业调查将记录检查数据的标准模板确定为高优先级项目,以便将数字孪生体应用于完整性管理。此外,选择系泊链作为关键的系泊部件,需要标准的检测模板。所提出的系泊数字孪生框架的损伤/性能预测的特点是:(i)利用由高保真物理模拟模型训练的替代模型和/或降阶模型,(ii)结合系泊系统所有可用的生命周期数据,(iii)基于不确定性量化(UQ)的概念,以系统的方式评估当前和未来的资产状况。通过确定的基本数据、物理模型和几种UQ方法(如代理建模、局部和全局灵敏度分析、贝叶斯预测等),描述了一般和特定系泊数字孪生开发工作流程。最后,对数字孪生系统的体系结构进行了总结,说明了数字孪生系统开发和利用的数据流程。基于网络的风险可视化和咨询系统——系泊数字孪生仪表板的原型被开发出来,以展示系统健康诊断和预测的可视化能力,并作为数字孪生的洞察力,为高风险组件提出可能的措施/解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mooring Integrity Management through Digital Twin and Standardized Inspection Data
This paper presents a concept of a mooring digital twin frameworkand a standardized inspection datatemplate to enable digital twin. The mooring digital twin framework supports real-time and/or on-demand decision making in mooring integrity management, which minimizes the failure risk while reducing operation and maintenance cost by efficient inspection, monitoring, repair, and strengthening. An industry survey conducted through the DeepStar project 18403 identified a standard template for recording inspection data as a high priority item to enable application of the digital twins for integrity management. Further, mooring chain was selected as a critical mooring component for which a standard inspection template was needed. The characteristics of damage/performance prediction with the proposed mooring digital twin framework are (i) to utilize surrogates and/or reduced-order models trained by high-fidelity physics simulation models, (ii) to combine all available lifecycle data about the mooring system, (iii) to evaluate current and future asset conditions in a systematic way based on the concept of uncertainty quantification (UQ). The general and mooring-specific digital twin development workflows are described with the identified essential data, physics models, and several UQ methodologies such as surrogate modeling, local and global sensitivity analyses, Bayesian prediction etc. Also, the proposed digital twin system architecture is summarized to illustrate the dataflow in digital twin development andutilization. The prototype of mooring digital twin dashboard, web-based risk visualization and advisory system, is developed to demonstrate the capability to visualize the system health diagnosis and prognosis and suggest possible measures/solutions for the high-risk components as a digital twin's insight.
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