Bridge health monitoring system based on wireless sensor network and working method thereof
A bridge health monitoring and sensor module technology, applied in signal transmission systems, instruments, etc., can solve problems such as unreasonable monitoring positions and imperfect monitoring items, and achieve the goal of perfecting the bridge health monitoring system, improving predictive ability, and realizing remote monitoring Effect
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Embodiment 1
[0035] Such as figure 1 As shown, the present embodiment 1 provides a bridge health monitoring system, including: a processor module (i.e. the processor module of the collection device), which controls and detects the sensor module of the state of the bridge; The bridge status data; the remote monitoring terminal obtains the bridge status data from the cloud server.
[0036] Optionally, the processor module is for example but not limited to 89C52 single-chip microcomputer.
[0037] Optionally, the remote monitoring terminal, such as but not limited to a mobile phone, can be connected to a cloud server through a C / S architecture, using the TCP / IP protocol. First open the mobile APP, log in to the server address, obtain bridge status data, and export the data to monitor the bridge in real time.
[0038] Optionally, the remote monitoring terminal, such as but not limited to a tablet or a PC, can be connected to a cloud server through a B / S structure. The user enters the addres...
Embodiment 2
[0065] On the basis of Embodiment 1, Embodiment 2 provides a working method of a bridge health monitoring system, and the bridge health monitoring system is suitable for sending bridge status data to a remote monitoring terminal through a cloud server.
[0066] Further, the cloud server is suitable for calculating the bridge state data through a genetic algorithm to obtain the damage degree of the bridge; the genetic algorithm includes the following steps: step S1, establishing an optimization model, that is, determining the objective function, decision variables and various constraints Conditions and mathematical description forms or quantification methods; Step S2, determine the chromosome coding method that represents the feasible solution, that is, determine the genotype x of the individual and the search space D of the genetic algorithm; step S3, determine the decoding method, that is, determine the genotype of the individual to the corresponding relationship or conversion...
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