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Testing and Life Prediction for Composite Rotor Hub FlexbeamsA summary of several studies of delamination in tapered composite laminates with internal ply-drops is presented. Initial studies used 2D FE models to calculate interlaminar stresses at the ply-ending locations in linear tapered laminates under tension loading. Strain energy release rates for delamination in these laminates indicated that delamination would likely start at the juncture of the tapered and thin regions and grow unstably in both directions. Tests of glass/epoxy and graphite/epoxy linear tapered laminates under axial tension delaminated as predicted. Nonlinear tapered specimens were cut from a full-size helicopter rotor hub and were tested under combined constant axial tension and cyclic transverse bending loading to simulate the loading experienced by a rotorhub flexbeam in flight. For all the tested specimens, delamination began at the tip of the outermost dropped ply group and grew first toward the tapered region. A 2D FE model was created that duplicated the test flexbeam layup, geometry, and loading. Surface strains calculated by the model agreed very closely with the measured surface strains in the specimens. The delamination patterns observed in the tests were simulated in the model by releasing pairs of MPCs along those interfaces. Strain energy release rates associated with the delamination growth were calculated for several configurations and using two different FE analysis codes. Calculations from the codes agreed very closely. The strain energy release rate results were used with material characterization data to predict fatigue delamination onset lives for nonlinear tapered flexbeams with two different ply-dropping schemes. The predicted curves agreed well with the test data for each case studied.
Document ID
20080014260
Acquisition Source
Langley Research Center
Document Type
Preprint (Draft being sent to journal)
Authors
Murri, Gretchen B.
(Army Research Lab. Hampton, VA, United States)
Date Acquired
August 24, 2013
Publication Date
September 13, 2004
Publication Information
Publication: International Journal of Fatigue
Volume: 28
Issue: 10
Subject Category
Composite Materials
Funding Number(s)
OTHER: 23R-762-25-9195-01
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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