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The Inclusion of Arbitrary Load Histories in the Strength Decay Model for Stress RuptureStress rupture is a failure mechanism where failures can occur after a period of time, even though the material has seen no increase in load. Carbon/epoxy composite materials have demonstrated the stress rupture failure mechanism. In a previous work, a model was proposed for stress rupture of composite overwrap pressure vessels (COPVs) and similar composite structures based on strength degradation. However, the original model was limited to constant load periods (holds) at constant load. The model was expanded in this paper to address arbitrary loading histories and specifically the inclusions of ramp loadings up to holds and back down. The broadening of the model allows for failures on loading to be treated as any other failure that may occur during testing instead of having to be treated as a special case. The inclusion of ramps can also influence the length of the "safe period" following proof loading that was previously predicted by the model. No stress rupture failures are predicted in a safe period because time is required for strength to decay from above the proof level to the lower level of loading. Although the model can predict failures during the ramp periods, no closed-form solution for the failure times could be derived. Therefore, two suggested solution techniques were proposed. Finally, the model was used to design an experiment that could detect the difference between the strength decay model and a commonly used model for stress rupture. Although these types of models are necessary to help guide experiments for stress rupture, only experimental evidence will determine how well the model may predict actual material response. If the model can be shown to be accurate, current proof loading requirements may result in predicted safe periods as long as 10(13) years. COPVs design requirements for stress rupture may then be relaxed, allowing more efficient designs, while still maintaining an acceptable level of safety.
Document ID
20140016387
Acquisition Source
Langley Research Center
Document Type
Conference Paper
Authors
Reeder, James R.
(NASA Langley Research Center Hampton, VA, United States)
Date Acquired
November 17, 2014
Publication Date
September 8, 2014
Subject Category
Composite Materials
Report/Patent Number
NF1676L-18076
Report Number: NF1676L-18076
Meeting Information
Meeting: American Society for Composites Technical Conference
Location: La Jolla, CA
Country: United States
Start Date: September 8, 2014
End Date: September 10, 2014
Sponsors: American Society for Testing and Materials, Japan Society for Composite Materials, American Society for Composites
Funding Number(s)
WBS: WBS 869021.03.07.02.01.02
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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