The Impact Properties of High-temperature Fiber-Metal Laminates
- 1 March 2007
- journal article
- research article
- Published by SAGE Publications in Journal of Composite Materials
- Vol. 41 (5), 613-632
- https://doi.org/10.1177/0021998306065291
Abstract
This study investigates the low and high velocity impact properties of fiber–metal laminates (FMLs) based on carbon fiber-reinforced poly-ether-ether-ketone (CF/PEEK) and glass fiber-reinforced poly-ether-imide (GF/PEI) composites. The aim of this work is to develop a lightweight hybrid material for use in high temperature aerospace applications. Here, low velocity impact tests are undertaken using an instrumented impact tower and high velocity impact tests are conducted using a nitrogen gas gun. Low velocity impact testing has shown that the specific perforation energy of the CF/PEEK-based FMLs is similar to that offered by the CF/PEEK composite. In contrast, the specific perforation energy of the GF/PEI FML system is lower than that of the plain PEI composite. The experimental evidence suggests that the inclusion of strong titanium alloy plies does not improve the perforation resistance of these FMLs. High velocity impact tests resulted in failure processes similar to those observed under low velocity loading conditions, with the specific perforation energy of the GF/PEI-based FMLs being higher than those exhibited by the plain GF/PEI composite. An extensive and detailed optical microscope study has shown that interfacial and interlaminar delaminations are the principal energy-absorbing mechanisms during low and high velocity impacts.Keywords
This publication has 11 references indexed in Scilit:
- Structure–properties relations in titanium‐based thermoplastic fiber–metal laminatesPolymer Composites, 2006
- Airframers exploit composites in battle for supremacyReinforced Plastics, 2005
- Composites lift off in primary aerostructuresReinforced Plastics, 2004
- Fatigue and Damage Tolerance of GlareApplied Composite Materials, 2003
- An Investigation into the Fatigue of a Hybrid Titanium Composite LaminateJournal of Composites Technology and Research, 1998
- Impact Response of Fiber Metal LaminatesKey Engineering Materials, 1997
- Impact loading on fibre metal laminatesInternational Journal of Impact Engineering, 1996
- High temperature hybrid titanium composite laminates: An early analytical assessmentApplied Composite Materials, 1996
- Fiber Metal Laminates — The Synthesis of Metals and CompositesMaterials and Manufacturing Processes, 1994
- Characterization of impact damage in ARALL laminatesComposites Science and Technology, 1993