Evaluation of Different Hybrid Material Systems and Systematic Analysis of their Physical Mechanisms in Terms of Fatigue

Author:

Hummelberger David1,Kärger Luise1,Henning Frank1

Affiliation:

1. Karlsruhe Institute of Technology

Abstract

Hybrid material systems are designed by the specific combination of different materials. As a result, expanded property profiles can be achieved, which would not be possible with monolithic material solutions. For lightweight, high strength and high rigidity, complex shaped structural components, which are used in the automotive industry and in aerospace, hybrid material systems offer an outstanding potential. A comprehensive understanding regarding the interaction of the individual components of the hybrid material is of great importance for a more efficient design of future structures. In this work, existing hybrid solutions for industrial applications and those, which are subject of current research, are analyzed and categorized first. Intrinsic and extrinsic material combinations are considered at different levels, ranging from hybrid laminates on shell level to complex hybrid structures on component level. Based on the situation analysis, different hybrid solutions are evaluated and compared considering the requirements of the automotive industry. Furthermore, the associated physical mechanisms which are responsible for the respective property profile are considered and explained systematically. The long-term objective of the work is to establish a methodology to derive the necessary physical mechanisms and, based on that, to derive optimal hybrid solutions for desired property profiles.

Publisher

Trans Tech Publications, Ltd.

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference42 articles.

1. D. Nestler, Beitrag zum Thema: Verbundwerkstoffe - Werkstoffverbunde - Status quo und Forschungsansätze, first edition, Universitätsverlag der TU Chemnitz, (2014).

2. J. Schijve, H. T. M. van Lipzig, G. F. J. A. van Gestel, and A.H.W. Hoeymakers, Fatigue properties of adhesive-bonded laminated sheet material of aluminum alloys, Engineering Fracture Mechanics Vol. 12 (1979) 561-579.

3. J. Schijve, Fatigue of aircraft materials and structures, Fatigue Vol. 16 Nr. 1 (1994) 21-32.

4. J. Schijve, Development of fibre-metal laminates, ARALL and GLARE, new fatigue resistant materials, Report LR-715 Delft University of Technology (January 1993).

5. W. J. Mills, and R. W. Hertzberg, The effect of sheet thickness on fatigue crack retardation in 2024-t3 aluminum alloy, Engineering Fracture Mechanics Vol. 7 (1975) 705-711.

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