Abstract

In the present study, the authors attempted to predict the fatigue lifetime of a real-scale integral concrete bridge with H-shaped steel piles resulting from working and environmental conditions. In this regard, various types of nonproportional variable amplitude loads were applied on the bridge, such as temperature variations and sea waves clash. To this end, CATIA software was used to model the real-scale bridge with its accessories, such as a concrete deck, concrete anchors (walls), I-shaped concrete beams (Ribs), and steel piles. Subsequently, stress analysis was performed to determine the critical area apt to fail. The results showed that steel piles are the most critical bridge components. As a result, in future analysis, the purpose will be to study this critical area, and the effect of relative humidity on the fatigue properties of concrete was ignored. Subsequently, the time history of stress tensor components in the critical area was obtained by performing transient dynamic analysis. Various well-known equivalent stress fatigue theories (von Mises, Findley, Dang Van, McDiarmid, Carpinteri–Spagnoli, Modified Findley, Modified McDiarmid, and Liu–Zenner) were utilized to calculate the equivalent stress caused by the simultaneous effect of temperature variations and sea waves clash. Eventually, the fatigue life of the structure was predicted by employing the rainflow counting algorithm and the Palmgren–Miner damage accumulation rule. The results indicated a reduction in the multiaxial fatigue life of the structure under the simultaneous effects of two phenomena, the daily temperature variations and the sea waves clash, of approximately 87% and 66%, respectively, compared with the fatigue life of the structure under either the effect of temperature changes or the effect of sea waves clash, separately. Therefore, it was necessary to consider all the cyclic loads in the structural design step to estimate the fatigue life of the structure. Moreover, the findings of this case study revealed that the lowest value of multiaxial fatigue lifetime is related to the application of the Liu-Zenner criterion. In other words, this criterion is more conservative than the other used criteria.

Highlights

  • The results revealed that all the critical elements are related to the upper part of the steel piles on either side of the bridge

  • A fatigue life assessment algorithm was proposed considering a complicated geometry under a multipoint 3D nonproportional input

  • The results of the structural analysis related to the sea waves clash indicated that the upper part of the middle pedestals underwent the highest deformations in the structure

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Summary

Introduction

The occurrence of the fatigue phenomenon in engineering structures, including buildings and bridges, is undeniable These structures are subject to various cyclic loads that, in the long run, lead to material damage that, after a while, reaches a critical value, resulting in the final structural failure. A great deal of research has been conducted to estimate the service life of the engineering structures and components under different working conditions and various types of dynamic loads [1,2,3]. The newly found solutions for improving the fatigue life of engineering structures, including surface treatments such as different types of

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