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The following paper focuses on the evolution of micro damage in short fibre reinforced polyamide. Therefore, tube samples are subjected to uni- and biaxial fatigue loadings. The evolution of micro damage is analysed by the non-destructive method of X-ray refraction analysis with consideration of the fibre orientation distribution. For validation of the applied micro damage models, fractographic analyses are performed.
Concluding some general results, it has been observed that the load ratio influences the quantitative dominance of micro damage, whereas occuring damage phenomena depend on the type of loading (i.e. tension and torsion). Thus, zones in the Haigh-diagram are detected, where the occurence of damage mechanisms qualitatively and quantitatively changes. This is a basis for further research regarding anisotropic damage criteria.
Short fibre reinforced thermoplastics are increasingly used in automotive applications because of their potential for light weight design and cost efficient manufacturing by injection moulding. The fibre orientation, tuneable in the production process, defines the degree of anisotropy which causes different damage behaviour depending on the multiaxial stress state.
Therefore, the multiaxial damage behaviour, based on micro cracking, is analysed by combining mechanical loading tests and non-destructive X-ray refractometry.
The multiaxial fatigue damage behaviour of short fibre reinforced polyamide 6 is analysed on injection moulded tube samples. In parallel with the fatigue tests, the damage state is evaluated
nondestructively by X-ray refraction analysis which detects inner surfaces by the variation of electron density. By applying X-ray refraction analysis and a model based on by GÜNZEL the micro damage evolution can be separated into fibre matrix debonding and matrix-Micro cracking.
The following paper focuses on the evolution of micro damage in short fibre reinforced polyamide. Therefore, tube samples are subjected to uni- and biaxial fatigue loadings. The evolution of micro damage is analysed by the non-destructive method of X-ray refraction analysis with consideration of the fibre orientation distribution. For validation of the applied micro damage models, fractographic analyses are performed. Concluding some general results, it has been observed that the load ratio influences the quantitative dominance of micro damage, whereas occurring damage phenomena depend on the type of loading (i.e. tension and torsion). Thus, zones in the Haigh-diagram are detected, where the occurrence of damage mechanisms qualitatively and quantitatively changes. This is a basis for further research regarding anisotropic damage criteria.
In der vorliegen Arbeit wird ein kurzglasfaserverstärktes Polyamid 6 unter zweiachsiger mechanischer Belastung charakterisiert. Die Analyse umfasst das einachsige und zweiachsige Ermüdungsverhalten unter Zug-, Torsions- und Zug-Torsionslast sowie die dabei auftretende charakteristische Mikroschädigungsentwicklung.
Zur Beschreibung des Ermüdungsverhaltens unter zweiachsiger Axial-Torsionslast kann das auf Ermüdungslasten angepasste, nicht-differenzierende Tsai-Hill-Kriterium angewendet werden.
Die Mikroschädigungsanalyse erfolgt begleitend zu den mechanischen Belastungsversuchen mit der zerstörungsfreien Prüfmethode der Röntgenrefraktionsanalyse. Durch fraktographische Analysen des Werkstoffes wird das qualitative Auftreten der im Modell angenommenen Schädigungsmechanismen abgesichert.
Prinzipiell ist die Mikroschädigung kurzfaserverstärkter Werkstoffe durch Faser-Matrix-Ablösungen beziehungsweise Faserbrüche und Matrix-Mikrorissbildung geprägt. Abhängig von Faserlängenkonfiguration sowie Belastungsart und -richtung ändert sich das Auftreten beziehungsweise die quantitative Ausprägung der einzelnen Mechanismen. So tritt Matrix-Mikrorissbildung lediglich im Zusammenhang mit Zuglasten auf, während Faser-Matrix-Ablösungen unabhängig von der Belastungsart im geschädigten Werkstoff vorliegen. Die Mikroschädigungsmechanismen Faser-Matrix-Ablösung und Matrix-Mikrorissbildung korrelieren linear mit den nichtlinearelastischen Verzerrungen unter statischen und schwellenden Ermüdungslasten (R = 0;1).
To date, in the textile manufacturing process of warp knitting, trouble-shooting and process optimization mainly rely on empirical knowledge and experiments. This factor limits the achievable increase in productivity and quality. On the other hand, using simulations, different phenomena that affect the quality of the knitted fabric and the knitting process can be clarified in the run-up of the experiments. Consequently, an increase in quality and flexibility can be reached with reduced experimental effort. This paper presents a process simulation of the warp thread dynamics in the thread feeding system of a warp knitting machine. For this purpose, a continuum model of the warp thread that includes the spatial dynamics of the thread and the axial transport movement has been developed.