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Piezoelectric wafers placement on complex and large structures based on genetic algorithm.

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dc.contributor.author Ismail, Zainab Mohammad
dc.date.accessioned 2020-03-27T22:16:03Z
dc.date.available 2020-03-27T22:16:03Z
dc.date.issued 2019
dc.date.submitted 2019
dc.identifier.other b23525320
dc.identifier.uri http://hdl.handle.net/10938/21633
dc.description Thesis. M.E. American University of Beirut. Department of Mechanical Engineering, 2019. ET:6988.
dc.description Advisor : Dr. Samir Mustapha, Assistant Professor, Mechanical Engineering ; Committee members : Dr. Hussein Tarhini, Assistant Professor, Industrial Engineering ; Dr. Mohammad Harb, Assistant Professor, Mechanical Engineering.
dc.description Includes bibliographical references (leaves 63-65)
dc.description.abstract This study presents an effective solution for the optimization of piezoelectric (PZT) wafers placement in a network on convex and non-convex structures, towards the application in the field of structural health monitoring. The proposed objective function is to maximize the coverage of the monitored area, discretized by a set of control points while minimizing the number of PZT wafers. In the optimum solution, each control point should be covered by a user-defined number of sensing paths, defined as the coverage level. The PZT locations were treated as continuous variables. Thus, during the optimization process, any location on the plate is considered as a potential position for a PZT wafer. The algorithm provides the flexibility of changing a wide range of parameters including the number of PZT wafers, the distance covered around the sensing path, the required coverage level and the number of control points, in addition to identifying the most sensitive PZT wafer within the network. The tractability of the model proposed was improved by feeding the solver an initial solution. The model calculates the importance of each PZT wafer within the network, which allows for further reduction of the number of active PZT elements. The suggested model was solved using a genetic algorithm. Multiple sensor network configurations on composite and metallic structures were selected, including a large cargo door of an A330 airplane, and validated experimentally. The experimental validation was to evaluate the accuracy in damage localization within the optimized sensor networks. The results demonstrated the proficiency of the model developed in distributing the PZT wafers on non-convex structures and large metallic structures.
dc.format.extent 1 online resource (xi, 65 leaves) : color illustrations, maps.
dc.language.iso eng
dc.subject.classification ET:006988
dc.subject.lcsh Piezoelectric ceramics.
dc.subject.lcsh Structural health monitoring.
dc.subject.lcsh Genetic algorithms.
dc.title Piezoelectric wafers placement on complex and large structures based on genetic algorithm.
dc.type Thesis
dc.contributor.department Department of Mechanical Engineering
dc.contributor.faculty Maroun Semaan Faculty of Engineering and Architecture
dc.contributor.institution American University of Beirut


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