Deep learning methods for damage detection of jacket-type offshore platforms

被引:21
|
作者
Bao, Xingxian [1 ,2 ]
Fan, Tongxuan [1 ]
Shi, Chen [3 ]
Yang, Guanlan [1 ]
机构
[1] China Univ Petr East China, Sch Petr Engn, Qingdao 266580, Peoples R China
[2] China Univ Petr East China, Natl Engn Lab Offshore Geophys & Explorat Equipme, Dongying 266580, Shandong, Peoples R China
[3] Harbin Inst Technol Weihai, Sch Ocean Engn, Weihai 264209, Peoples R China
基金
中国国家自然科学基金;
关键词
Damage detection; Deep learning; Random decrement technique; Offshore platforms; IDENTIFICATION; MODEL;
D O I
10.1016/j.psep.2021.08.031
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Recently, big data and machine learning based damage detection methods to support risk management of offshore facilities have received great attention, compared to traditional modal parameters-based methods. This paper illustrates the application of deep learning methods in damage detection of offshore platforms using measured vibration response of the structures subjected to random excitations. The numerical example of a jacket-type offshore platform under random wave excitation is applied to verify the applicability of convolutional neural network (CNN), long short-term memory (LSTM) networks, and CNN-LSTM method. The comparison of the three approaches are conducted in terms of accuracy and efficiency of damage localization and severity estimation for the simulated damage cases. In addition, the random decrement technique (RDT) for data preprocessing is used to improve the capability of damage detection of the three deep learning methods in noisy conditions. Moreover, the proposed RDT combined with the deep learning methods are applied to laboratory tests of a jacket platform model under random loading produced by a shaking table. Minor and major damages at different locations are discussed. Results show that the proposed combination method has an outstanding performance in structural damage detection even in noisy conditions, and also has great potential application in industrial process safety and operational risk management. (c) 2021 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:249 / 261
页数:13
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