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Organisationseinheit der BAM
- 9 Komponentensicherheit (52)
- 9.4 Integrität von Schweißverbindungen (49)
- 9.0 Abteilungsleitung und andere (7)
- 5 Werkstofftechnik (6)
- 5.1 Mikrostruktur Design und Degradation (5)
- 9.6 Additive Fertigung metallischer Komponenten (5)
- 8 Zerstörungsfreie Prüfung (3)
- 8.5 Röntgenbildgebung (3)
- 4 Material und Umwelt (2)
- 9.3 Schweißtechnische Fertigungsverfahren (2)
Paper des Monats
- ja (1)
Eingeladener Vortrag
- nein (40)
Two of the authors of the present paper proposed a definition of a reference load F0 which can be used as an alternative option to the common limit load for cases where the definition of the latter might be problematic in the frame of flaw assessment procedures such as R6, BS 7910, SINTAP or FITNET. The reference load is defined as that load at which the ligament yielding parameter Lr approaches one. F0, in general, varies along the crack front. It has to be obtained by finite element analyses but the results can be approximated by analytical expressions. In a previous study of the authors such a solution was presented for tension loaded plates with semi-elliptical surface cracks. In the present paper it is extended to pure bending and to combined bending and tension.
The determination of the fatigue life in technical alloys containing large and small defects must rely on a propagation model which accounts for short and long crack growth. Recently an analytical model which incorporates propagation in the short crack regime and plastic correction for the crack driving force has been presented by two of the authors.
This work is intended to show further validation of the model, taking into account data sets for different materials with different testing conditions.
Despite the assumptions about missing parameters, the value of which had to be taken from the literature, the predictions showed a fairly good approximation of the fatigue lives. A possible interpretation of the results in terms of multiple crack initiation and propagation at higher loads is proposed.
Analytische bruchmechanische Ermittlung der Schwingfestigkeit von Schweißverbindungen (IBESS-A3)
(2016)
Ziel des DFG-AiF-Forschungsclusters IBESS war die Entwicklung einer Methodik zur bruchmechanischen Ermittlung von Wöhlerkurven in Schweißverbindungen. Dem vorliegenden Teilprojekt A3 kamen dabei zwei Aufgaben zu: die Entwicklung einer analytischen bruchmechanischen Methodik und die Koordinierung des insgesamt acht Partner umfassenden Clusters. Dieser Bericht fasst die Ergebnisse der erstgenannten Aufgabe zusammen. Die bruchmechanische Methode ist durch folgende Aspekte charakterisiert. (a) Sie beschreibt sowohl Kurz- als auch Langrisswachstum. Ersteres umfasst mechanisch und physikalisch kurze Risse. Mechanisch kurze Risse weisen Abmessungen in der Größenordnung der plastischen Zone auf, weshalb sie zwar bruchmechanisch, nicht jedoch auf der Basis des linear-elastischen K-Konzepts charakterisiert werden können. Im Projekt wurde entsprechend eine Methode zur Bestimmung eines „plastizitätskorrigierten“ zyklischen K-Faktors entwickelt, die auf dem zyklischen J-Integral beruht. Physikalisch kurz bedeutet, dass die Rissschließeffekte im Ausgangsstadium der Rissentwicklung zunächst noch nicht vorhanden sind, dann jedoch graduell aufgebaut werden, bis sie mit Erreichen des Langrissstadiums eine risstiefenunabhängig konstante Größe erreichen. Beschrieben wird dieser Effekt durch die Anwendung der sogenannten zyklischen R-Kurve, der Funktion des Schwellenwerts gegen Rissausbreitung von der Risstiefe. Mittels Rissarrestbetrachtungen des kurzen Risses werden (b) die Ausgangsrissgröße für die weitere Bruchmechanikanalyse und (c) die für N = 107 definierte Dauerfestigkeit der Bauteile bestimmt. Die Analyse erfolgt (d) statistisch, Schwankungen der lokalen Nahtgeometrie entlang des Nahtübergangs über ein Modell äquidistanter Abschnitte einbezogen werden. (e) Eigenspannungen werden sowohl im unbehandelten Schweißzustand als auch nach zyklischer Belastung berücksichtigt. Das Modell wird an insgesamt 33 Wöhlerkurven validiert, die an drei Schweißverbindungsformen (Stumpfstoß, Kreuzstoß, Längssteife) mit je zwei unterschiedlichen Ausführungen, zwei Werkstoffen (S355NL und S960QL), sowie im spannungsarmgeglühten und ungeglühten Zustand experimentell ermittelt wurden.
The two-part paper series provides an overview on the state-of-the-art in the application of engineering fracture mechanics to weldments limited to butt and fillet welds with crack initiation at weld toes. In the present second part, one focus is on welding residual stresses, their characteristics and stability under cyclic loading and their effect on structural integrity. Subsequently, features will be addressed which are essential for applying fracture mechanics to overall fatigue life and fatigue strength considerations of weldments. These comprise fatigue life relevant initial crack sizes and multiple crack initiation and Propagation due to various stress peaks along the weld toe. A concept is briefly introduced which covers all these aspects.
The two-part paper provides an overview on the state-of-the-art in the application of engineering fracture mechanics to weldments. This, of course, cannot be exhaustive but is limited to butt and fillet welds with crack initiation at weld toes. In the present first pari, the authors briefly focus on the susceptibility of welds to cracks and other defects. Following this, they discuss in more detail the consequences of material inhomogeneity across the weld for fracture mechanics. Inhomogeneity causes scatter in fracture toughness and strength mis-match effects which both have to be considered in fracture toughness testing, crack driving force determination and fracture assessment of welded components. Part 2 of the paper series will add a discussion of welding residual stresses and questions of applying fracture mechanics to residual as well as total lifetime estimation of welds under cyclic loading.
The presentation provides a discussion and damage tolerant assessment of metallic AM components. In the focus are problems of the determination of representative material data, the effect of material defects and residual stresses. Starting with the actual state-of-the-art in the field, options and possibilities of a damage tolerant design for AM are discussed.
Foreword
(2018)
The subject of this Special Issue is the fracture mechanics-based determination of the fatigue strength of weldments. Except for one, all papers were written in closer or wider relation to a methodology developed within the framework of the German Project cluster IBESS. Some of them provide background or supplementary information needed in that context but which is also relevant in a wider frame of research activities. The acronym IBESS stands for the topic of this Special Issue (in German: „Integrale Methode zu Bruchmechanischen Ermittlung der Schwingfestigkeit von Schweißverbindungen). Eight partners were involved. The cluster was cooperatively founded by the German Research Foundation (Deutsche Forschungsgemeinschaft) and by the German AiF Network (Arbeitsgemeinschaft industrieller Forschungsvereinigungen) for industrial research.
A discussion is provided on demands that must be met in order to apply fracture mechanics to the determination of overall fatigue lifetime and strength, i.e., S-N curves and fatigue limits. These comprise the determination of the cyclic crack driving force for all stages of fatigue crack propagation, in particular for the short crack stage where the crack driving force has to be determined for elastic-plastic deformation and the gradual build-up of the crack closure phenomenon. Special emphasis is put on a fatigue damage relevant specification of the initial crack size. Different approaches in the literature are discussed. Another important aspect is the adequate treatment of multiple crack propagation. Finally, the discussion is illustrated by an example of a butt weld made of a medium strength steel.