Implementation of a Piezo-diagnostics Approach for Damage Detection Based on PCA in a Linux-Based Embedded Platform

被引:3
作者
Camacho, Jhonatan [1 ,2 ]
Quintero, Andres [3 ]
Ruiz, Magda [1 ]
Villamizar, Rodolfo [2 ]
Mujica, Luis [3 ]
机构
[1] Univ Politecn Cataluna, EEBE, CoDAlab, Dept Matemat, Campus Diagonal Besos C,Eduard Maristany 6-12, Barcelona 08930, Spain
[2] UIS, Grp Control Elect Modelado & Simulac CEMOS, Escuela Ingn Elect Elect & Telecomunicac E3T, Santander 680002, Colombia
[3] UIS, Ctr Crecimiento Empresarial MacondoLab, Barranquilla 080001, Colombia
关键词
principal component analysis; embedded system; online monitoring; structural health monitoring; guided waves; pipeline damage detection; SYSTEM;
D O I
10.3390/s18113730
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
The implementation of damage-detection methods for continuously assessing structural integrity entails systems with attractive features such as storage capabilities, memory capacity, computational complexity and time-consuming processing. In this sense, embedded hardware platforms are a promising technology for developing integrated solutions in Structural Health Monitoring. In this paper, design, test, and specifications for a standalone inspection prototype are presented, which take advantage of piezo-diagnostics principle, statistical processing via Principal Component Analysis (PCA) and embedded systems. The equipment corresponds to a piezoelectric active system with the capability to detect defects in structures, by using a PCA-based algorithm embedded in the Odroid-U3 ARM Linux platform. The operation of the equipment consists of applying, at one side of the structure, wide guided waves by means of piezoelectric devices operated in actuation mode and to record the wave response in another side of the structure by using the same kind of piezoelectric devices operated in sensor mode. Based on the nominal response of the guide wave (no damages), represented by means of a PCA statistical model, the system can detect damages between the actuated/sensed points through squared prediction error (Q-statistical index). The system performance was evaluated in a pipe test bench where two kinds of damages were studied: first, a mass is added to the pipe surface, and then leaks are provoked to the pipe structure by means of a drill tool. The experiments were conducted on two lab structures: (i) a meter carbon-steel pipe section and (ii) a pipe loop structure. The wave response was recorded between the instrumented points for two conditions: (i) The pipe in nominal conditions, where several repetitions will be applied to build the nominal statistical model and (ii) when damage is caused to the pipe (mass adding or leak). Damage conditions were graphically recognized through the Q-statistic chart. Thus, the feasibility to implement an automated real-time diagnostic system is demonstrated with minimum processing resources and hardware flexibility.
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页数:15
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