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Modal Parameter Identification Method of Jacket Platform Structure Based on AFDD and Optimized FBFFT
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作者 LENG Jian-cheng MA Jin-yong +2 位作者 FAN Zong-heng qian wan-dong FENG Hui-yu 《China Ocean Engineering》 SCIE EI CSCD 2023年第3期393-407,共15页
Offshore platforms are susceptible to structural damage due to prolonged exposure to random loads,such as wind,waves,and currents.This is particularly true for platforms that have been in service for an extended perio... Offshore platforms are susceptible to structural damage due to prolonged exposure to random loads,such as wind,waves,and currents.This is particularly true for platforms that have been in service for an extended period.Identifying the modal parameters of offshore platforms is crucial for damage diagno sis,as it serves as a prerequisite and foundation for the process.Therefore,it holds great significance to prioritize the identification of these parameters.Aiming at the shortcomings of the traditional Fast Bayesian Fast Fourier Transform(FBFFT) method,this paper proposes a modal parameter identification method based on Automatic Frequency Domain Decomposition(AFDD) and optimized FBFFT.By introducing the AFDD method and Powell optimization algorithm,this method can automatically identify the initial value of natural frequency and solve the objective function efficiently and simply.In order to verify the feasibility and effectiveness of the proposed method,it is used to identify the modal parameters of the IASC-ASCE benchmark model and the j acket platform structure model,and the Most Probable Value(MPV) of the modal parameters and their respective posterior uncertainties are successfully identified.The identification results of the IASC-ASCE benc hmark model are compared with the identification re sults of the MODE-ID method,which verifies the effectivene ss and accuracy of the proposed method for identifying modal parameters.It provides a simple and feasible method for quantifying the influence of uncertain factors such as environmental parameters on the identification results,and also provide s a reference for modal parameter identification of other large structures. 展开更多
关键词 jacket platform uncertain modal parameter identification FBFFT method environmental excitation AFDD method Powell optimization
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服役构件疲劳损伤的声发射信号特征提取
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作者 冷建成 王玉洁 +1 位作者 钱万东 刘晔 《化工机械》 CAS 2021年第2期186-192,共7页
基于拉-拉疲劳试验,在线监测了试件关键部位的声发射信号在不同疲劳循环次数下的变化。通过对声发射监测信号进行统计分析、小波包能量谱分析和小波熵特征提取,确定了反映疲劳损伤的声发射特征参数为幅值、电压、高频能量占比和小波熵值... 基于拉-拉疲劳试验,在线监测了试件关键部位的声发射信号在不同疲劳循环次数下的变化。通过对声发射监测信号进行统计分析、小波包能量谱分析和小波熵特征提取,确定了反映疲劳损伤的声发射特征参数为幅值、电压、高频能量占比和小波熵值,结果表明:所提取的特征参数均将整个疲劳过程划分为初始、中间和后期3个阶段,较好地反映了疲劳寿命循环的裂纹萌生、裂纹稳态扩展和裂纹失稳扩展3个阶段,可用于不同疲劳寿命区间的预测。 展开更多
关键词 化工设备 无损检测 小波包能量谱 小波熵 特征提取 疲劳损伤 设计使用年限
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