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首页> 外文期刊>Applied Ocean Research >Developing a robust SHM method for offshore jacket platform using model updating and fuzzy logic system
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Developing a robust SHM method for offshore jacket platform using model updating and fuzzy logic system

机译:使用模型更新和模糊逻辑系统开发可靠的SHM海上平台平台方法

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摘要

Structural monitoring is essential for ensuring the structural safety performance during the service life. The process is of paramount importance in case of the offshore jacket-type platforms due to the underwater structural parts subjected to the marine environmental conditions. This work is an experimental investigation on a laboratory model of a jacket platform with the objective of establishing a baseline finite element (FE) model for long-term structural health monitoring for this type of structures. A robust damage diagnosis system is also developed which is less sensitive to both the measurements and the modeling uncertainties. Experimental vibration tests are conducted on a physical platform model to obtain dynamic characteristics and then, the initial FE-model of the intact structure is developed to determine them numerically. Some differences between numerically and experimentally identified characteristics emerge due to various uncertainties in the FE-model and measured vibration data. To minimize these differences, initial FE-model is updated according to the experimental results. The updated FE-model is employed to predict the changes in the dynamic characteristics under variety of damage scenarios which are imposed by reducing the stiffness at the components of the model. Fuzzy logic system (FLS) and probabilistic analysis is developed for linguistic classification of damage and global damage diagnosis. Incorporation of the FLS fault isolation technique into FE-model updating method are proposed and evaluated for two different FLS methods to develop a vigorous damage diagnosis method. The efficiency of the technique is validated by different damage scenarios foreseen on the physical model. This technique is shown to be effective for diagnosing the presence of degradation and quantify it.
机译:结构监测对于确保使用寿命内的结构安全性能至关重要。对于海上夹套式平台,由于水下结构部件要承受海洋环境条件,因此该过程至关重要。这项工作是对护套平台的实验室模型的实验研究,目的是建立用于对此类结构进行长期结构健康监测的基线有限元(FE)模型。还开发了一种鲁棒的损坏诊断系统,该系统对测量和建模不确定性均较不敏感。在物理平台模型上进行实验振动测试以获得动态特性,然后开发完整结构的初始有限元模型以对其进行数值确定。由于有限元模型和测得的振动数据存在各种不确定性,因此在数字和实验识别特性之间会出现一些差异。为了使这些差异最小化,将根据实验结果更新初始有限元模型。使用更新后的有限元模型来预测在各种损坏情况下动态特性的变化,这些损坏情况是通过降低模型组件的刚度来施加的。开发了模糊逻辑系统(FLS)和概率分析,用于损伤的语言分类和整体损伤诊断。提出了将FLS故障隔离技术结合到有限元模型更新方法中的方法,并针对两种不同的FLS方法进行了评估,以开发出强有力的损伤诊断方法。通过在物理模型上预见的不同损坏情况可以验证该技术的效率。该技术显示出对诊断降解的存在并对其进行量化是有效的。

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