4.7 Article

Determination of structural and damage detection system influencing parameters on the value of information

出版社

SAGE PUBLICATIONS LTD
DOI: 10.1177/1475921719900918

关键词

Damage detection systems; value of information; deteriorating structures; probability of damage indication; decision theory

资金

  1. European Union's Horizon 2020 research and innovation program under the Marie Sklodowska-Curie Grant [676139]

向作者/读者索取更多资源

A method based on value of information analysis is proposed to determine the influencing parameters of a structural and damage detection system. The Bayesian pre-posterior decision theory is utilized to quantify the value of the damage detection system for structural integrity management. Analysis shows that deterioration rate is the most sensitive parameter influencing the relative value of information, and specific sensor locations near highly utilized components lead to a higher relative value of information.
A method to determine the influencing parameters of a structural and damage detection system is proposed based on the value of information analysis. The value of information analysis utilizes the Bayesian pre-posterior decision theory to quantify the value of damage detection system for the structural integrity management during service life. First, the influencing parameters of the structural system, such as deterioration type and rate are introduced for the performance of the prior probabilistic system model. Then the influencing parameters on the damage detection system performance, including number of sensors, sensor locations, measurement noise, and the Type-I error are investigated. The pre-posterior probabilistic model is computed utilizing the Bayes' theorem to update the prior system model with the damage indication information. Finally, the value of damage detection system is quantified as the difference between the maximum utility obtained in pre-posterior and prior analysis based on the decision tree analysis, comprising structural probabilistic models, consequences, as well as benefit and costs analysis associated with and without monitoring. With the developed approach, a case study on a statically determinate Pratt truss bridge girder is carried out to validate the method. The analysis shows that the deterioration rate is the most sensitive parameter on the effect of relative value of information over the whole service life. Furthermore, it shows that more sensors do not necessarily lead to a higher relative value of information; only specific sensor locations near the highest utilized components lead to a high relative value of information; measurement noise and the Type-I error should be controlled and be as small as possible. An optimal sensor employment with highest relative value of information is found. Moreover, it is found that the proposed method can be a powerful tool to develop optimal service life maintenance strategies-before implementation-for similar bridges and to optimize the damage detection system settings and sensor configuration for minimum expected costs and risks.

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