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Detecting damage to offshore platform structures using the time-domain data
作者姓名:程远胜  王真
作者单位:Faculty of Traffic Science and Engineering Huazhong University of Science and Technology,Faculty of Traffic Science and Engineering Huazhong University of Science and Technology,Wuhan 430074 Chin,Wuhan 430074 Chin
摘    要:A new method that uses time-domain response data under random loading is proposed for detecting damage to the structural elements of offshore platforms. In our study, a time series model with a fitting order was first constructed using the time-domain of noise data. A sensitivity matrix consisting of the first differential of the autoregressive coefficients of the time series models with respect to the stiffness of structural elements was then obtained based on time-domain response data. Locations and severity of damage may then be estimated by solving the damage vector whose components express the degrees of damage to the structural elements. A unique aspect of this detection method is that it requires acceleration history data from only one or a few sensors. This makes it feasible for a limited array of sensors to obtain sufficient data. The efficiency and reliability of the proposed method was demonstrated by applying it to a simplified offshore platform with damage to one element. Numerical simulations show that the use of a few sensors' acceleration history data, when compared with recorded levels of noise, is capable of detecting damage efficiently. An increase in the number of sensors helps improve the diagnosis success rate.

关 键 词:近海平台  损伤检测  检测技术  建筑物

Detecting damage to offshore platform structures using the time-domain data
Yuan-sheng Cheng,Zhen Wang.Detecting damage to offshore platform structures using the time-domain data[J].Journal of Marine Science and Application,2008,7(1):7-14.
Authors:Yuan-sheng Cheng  Zhen Wang
Institution:Faculty of Traffic Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China
Abstract:A new method that uses time-domain response data under random loading is proposed for detecting damage to the structural elements of offshore platforms. In our study, a time series model with a fitting order was first constructed using the time-domain of noise data. A sensitivity matrix consisting of the first differential of the autoregressive coefficients of the time series models with respect to the stiffness of structural elements was then obtained based on time-domain response data. Locations and severity of damage may then be estimated by solving the damage vector whose components express the degrees of damage to the structural elements. A unique aspect of this detection method is that it requires acceleration history data from only one or a few sensors. This makes it feasible for a limited array of sensors to obtain sufficient data. The efficiency and reliability of the proposed method was demonstrated by applying it to a simplified offshore platform with damage to one element. Numerical simulations show that the use of a few sensors' acceleration history data, when compared with recorded levels of noise, is capable of detecting damage efficiently. An increase in the number of sensors helps improve the diagnosis success rate.
Keywords:offshore platform  damage detection  time-domain response  time series analysis  sensitivity analysis  autoregressive coefficient
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