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1.
Sensors (Basel) ; 16(11)2016 Nov 09.
Artigo em Inglês | MEDLINE | ID: mdl-27834871

RESUMO

To implement steel bridge maintenance, especially that related to fatigue damage, it is important to monitor bridge deformations under traffic conditions. Bridges deform and rotate differently under traffic load conditions because their structures differ in terms of length and flexibility. Such monitoring enables the identification of the cause of stress concentrations that cause fatigue damage and the proposal of appropriate countermeasures. However, although bridge deformation monitoring requires observations of bridge angle response as well as the bridge displacement response, measuring the rotation angle response of a bridge subject to traffic loads is difficult. Theoretically, the rotation angle response can be calculated by integrating the angular velocity, but for field measurements of actual in-service bridges, estimating the necessary boundary conditions would be difficult due to traffic-induced vibration. To solve the problem, this paper proposes a method for determining the rotation angle response of an in-service bridge from its angular velocity, as measured by a inertial measurement unit (IMU). To verify our proposed method, field measurements were conducted using nine micro-electrical mechanical systems (MEMS) IMUs and two contact displacement gauges. The results showed that our proposed method provided high accuracy when compared to the reference responses calculated by the contact displacement gauges.

2.
Sensors (Basel) ; 16(2): 257, 2016 Feb 19.
Artigo em Inglês | MEDLINE | ID: mdl-26907287

RESUMO

In bridge maintenance, particularly with regard to fatigue damage in steel bridges, it is important to determine the displacement response of the entire bridge under a live load as well as that of each member. Knowing the displacement response enables the identification of dynamic deformations that can cause stresses and ultimately lead to damage and thus also allows the undertaking of appropriate countermeasures. In theory, the displacement response can be calculated from the double integration of the measured acceleration. However, data measured by an accelerometer include measurement errors caused by the limitations of the analog-to-digital conversion process and sensor noise. These errors distort the double integration results. Furthermore, as bridges in service are constantly vibrating because of passing vehicles, estimating the boundary conditions for the numerical integration is difficult. To address these problems, this paper proposes a method for determining the displacement of a bridge in service from its acceleration based on its free vibration. To verify the effectiveness of the proposed method, field measurements were conducted using nine different accelerometers. Based on the results of these measurements, the proposed method was found to be highly accurate in comparison with the reference displacement obtained using a contact displacement gauge.

3.
In. Lee, George C, ed; Chang, K. C, ed. Proceedings of the International Workshop on Civil Infrastructure Systems : Application of intelligent systems and advanced materials on bridge systems. Taipei, U.S. National Center for Earthquake Engineering Research, Jul. 1994. p.325-41, ilus, Tab. (Technical Report NCEER, 94-0019).
Monografia em En | Desastres | ID: des-7224

RESUMO

The history of steel bridge construction, use of high strength steels and recent research and developments of steels in Japan are all reviewed.(AU)


Assuntos
Engenharia , Aço , Japão , Materiais de Construção
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