Strengthening of steel structures with fatigue cracks using adhesively bonded non-prestressed and prestressed CFRP lamellas

Author:

Ciupack Yvonne1,Ledecky Lukas1,Kasper Yann2,Geßler Achim3,Albiez Matthias2,Pasternak Hartmut1,Ummenhofer Thomas2,Feldmann Markus3

Affiliation:

1. Chair of Steel and Timber Structures, Brandenburg University of Technology, Cottbus, Germany

2. Research Center for Steel, Timber and Masonry, Karlsruhe Institute of Technology (KIT), Karlsruhe, Germany

3. Institute of Steel Construction, RWTH Aachen University, Aachen, Germany

Abstract

In comparison to classic strengthening methods of fatigue-damaged steel structures, adhesively bonded CFRP lamellas show several advantages. Compared to bolted reinforcement measures and the drilling of the crack tip, crosssectional weakening is avoided. Heat-induced, negatively acting residual stresses and distortions, usually occurring during repair welding, can also be excluded. Therefore, the effectiveness of adhesively bonded CFRP lamellas to enhance the remaining lifetime of fatigue damaged steel structures is examined in a German research project. Selected results are presented in this paper. To characterize the steel, CFRP and adhesive materials, different tests on small scale specimens are carried out. With the help of fatigue tests on CT-samples the remaining fatigue lifetimes of specimens strengthened with adhesively bonded CFRP lamellas is compared to the remaining lifetimes of specimens strengthened by established methods such as drilling the crack tip and repair welding. Based on the evaluation of the crack propagation after the rehabilitation measures, the great potential of adhesively bonded CFRP reinforcements can be deduced. By prestressing the lamellas, the remaining lifetime can generally be increased further. The combination of adhesively bonded CFRP lamellas together with established rehabilitation methods shows a particularly high positive influence on the remaining lifetime of the CT-specimens.

Publisher

Vilnius Gediminas Technical University

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Fatigue Tests on Compact-tension Specimens Repaired by CFRP;IABSE Congress, Nanjing 2022: Bridges and Structures: Connection, Integration and Harmonisation;2022

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