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pro vyhledávání: '"Kristen Rege"'
Autor:
Kristen Rege, Dimitrios G. Pavlou
Publikováno v:
Proceedings of the Institution of Civil Engineers - Maritime Engineering. 172:3-14
As offshore structures are reaching their original design life, effective repair and life-extension techniques are required, in order to ensure continued safe operation. A stop hole may be drilled at the end of a crack, in order to delay further fati
Autor:
Dimitrios G. Pavlou, Kristen Rege
Publikováno v:
Fatigue & Fracture of Engineering Materials & Structures. 42:1062-1074
Publikováno v:
International Journal of Fatigue
Environmental loads acting on structures usually cause fatigue crack propagation under variable amplitude mixed-mode conditions. In order to better estimate the remaining fatigue life, the fatigue crack growth behaviour under these conditions needs t
Externí odkaz:
https://explore.openaire.eu/search/publication?articleId=doi_dedup___::01cf3e6caae384a1d7d35d88e7838da1
https://hdl.handle.net/11250/2754507
https://hdl.handle.net/11250/2754507
Autor:
Kristen Rege
Publikováno v:
Pipeline Science and Technology. 2:67-80
AN APPROXIMATE DYNAMIC MODEL describing the undamped radial vibration of thin-walled steel pipes with an overwrap of laminated fibre-reinforced polymer (FRP), due to fluid-hammer conditions, is derived. The derived model is an uncoupled model, in whi
Autor:
Dimitrios G. Pavlou, Kristen Rege
Publikováno v:
International Journal of Fatigue. 98:234-246
A nonlinear model for fatigue damage accumulation under variable amplitude loading is presented. The known assumption that the isodamage curves are converging at the knee point of the S-N curve of the material, has been adopted. The proposed model do
Autor:
Bjørn H. Hjertager, Kristen Rege
Publikováno v:
IOP Conference Series: Materials Science and Engineering. 276:012031
Turbulent flow around flexible structures is likely to induce structural vibrations which may eventually lead to fatigue failure. In order to assess the fatigue life of these structures, it is necessary to take the action of the flow on the structure