Use of mode shape ratios for pier scour monitoring in two-span integral bridges under changing environmental conditions

Author:

Malekjafarian A.1,Prendergast L.J.2,OBrien E.1

Affiliation:

1. School of Civil Engineering, University College Dublin, Newstead, Belfield, Dublin 4, Ireland.

2. Department of Civil Engineering, Faculty of Engineering, University of Nottingham, Nottingham NG7 2RD, United Kingdom.

Abstract

In this paper, a novel pier scour indicator is introduced, which uses the ratio between mode shape amplitudes identified at two points on an integral bridge structure to monitor the progression of scour erosion. The mode shape ratio (MSR) is investigated as an additional parameter to complement the use of changes in natural frequency as a scour indicator. The approach is demonstrated using numerical modelling and the MSR is extracted from acceleration signals arising in the structure due to modelled ambient and vehicle-induced vibrations. The MSR shows higher sensitivity to scour erosion than the more commonly researched natural frequency. Furthermore, the variation in MSR under temperature fluctuations is inversely related to that of frequency, in that it increases with increasing temperature whereas frequency decreases with increasing temperature. This inverse relationship potentially enables the separation of the scour effect from the temperature influence on the dynamics of the system.

Publisher

Canadian Science Publishing

Subject

General Environmental Science,Civil and Structural Engineering

Reference49 articles.

1. API. 2007. Recommended practice for planning, designing, and constructing fixed offshore platforms-working stress design. API RP 2A-WSD-2007. American Petroleum Institute, Washington, DC.

2. Bridge Scour and Substructure Deterioration: Case Study

3. Critical insights for advanced bridge scour detection using the natural frequency

4. Erosion Function Apparatus for Scour Rate Predictions

5. Brincker, R., and Ventura, C.E. 2015. Introduction to operational modal analysis. John Wiley & Sons, Ltd., Chichester, United Kingdom. 10.1002/9781118535141.

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