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Compression Behavior of Fluted-Core Composite PanelsIn recent years, fiber-reinforced composites have become more accepted for aerospace applications. Specifically, during NASA s recent efforts to develop new launch vehicles, composite materials were considered and baselined for a number of structures. Because of mass and stiffness requirements, sandwich composites are often selected for many applications. However, there are a number of manufacturing and in-service concerns associated with traditional honeycomb-core sandwich composites that in certain instances may be alleviated through the use of other core materials or construction methods. Fluted-core, which consists of integral angled web members with structural radius fillers spaced between laminate face sheets, is one such construction alternative and is considered herein. Two different fluted-core designs were considered: a subscale design and a full-scale design sized for a heavy-lift-launch-vehicle interstage. In particular, axial compression of fluted-core composites was evaluated with experiments and finite-element analyses (FEA); axial compression is the primary loading condition in dry launch-vehicle barrel sections. Detailed finite-element models were developed to represent all components of the fluted-core construction, and geometrically nonlinear analyses were conducted to predict both buckling and material failures. Good agreement was obtained between test data and analyses, for both local buckling and ultimate material failure. Though the local buckling events are not catastrophic, the resulting deformations contribute to material failures. Consequently, an important observation is that the material failure loads and modes would not be captured by either linear analyses or nonlinear smeared-shell analyses. Compression-after-impact (CAI) performance of fluted core composites was also investigated by experimentally testing samples impacted with 6 ft.-lb. impact energies. It was found that such impacts reduced the ultimate load carrying capability by approximately 40% on the subscale test articles and by less than 20% on the full-scale test articles. Nondestructive inspection of the damage zones indicated that the detectable damage was limited to no more than one flute on either side of any given impact. More study is needed, but this may indicate that an inherent damage-arrest capability of fluted core could provide benefits over traditional sandwich designs in certain weight-critical applications.
Document ID
20110010005
Acquisition Source
Langley Research Center
Document Type
Conference Paper
Authors
Schultz, Marc R.
(NASA Langley Research Center Hampton, VA, United States)
Oremont, Leonard
(Lockheed Martin Corp. Hampton, VA, United States)
Guzman, J. Carlos
(Boeing Co. Seattle, WA, United States)
McCarville, Douglas
(Boeing Co. Seattle, WA, United States)
Rose, Cheryl A.
(NASA Langley Research Center Hampton, VA, United States)
Hilburger, Mark W.
(NASA Langley Research Center Hampton, VA, United States)
Date Acquired
August 25, 2013
Publication Date
April 4, 2011
Subject Category
Composite Materials
Report/Patent Number
NF1676L-12315
Report Number: NF1676L-12315
Meeting Information
Meeting: 52nd AIAA/ASME/ASCE/AHS/ASC Structures, Structural Dynamics, and Materials Conference
Location: Denver, CO
Country: United States
Start Date: April 4, 2011
End Date: April 7, 2011
Sponsors: American Society for Composites, American Helicopter Society, Inc., American Inst. of Aeronautics and Astronautics, American Society of Civil Engineers, American Society of Mechanical Engineers
Funding Number(s)
WBS: WBS 869021.04.07.01.13
Distribution Limits
Public
Copyright
Public Use Permitted.
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