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Fuzzy Reasoning to More Accurately Determine Void Areas on Optical Micrographs of Composite StructuresAccomplishing the best-performing composite matrix (resin) requires that not only the processing method but also the cure cycle generate low-void-content structures. If voids are present, the performance of the composite matrix will be significantly reduced. This is usually noticed by significant reductions in matrix-dominated properties, such as compression and shear strength. Voids in composite materials are areas that are absent of the composite components: matrix and fibers. The characteristics of the voids and their accurate estimation are critical to determine for high performance composite structures. One widely used method of performing void analysis on a composite structure sample is acquiring optical micrographs or Scanning Electron Microscope (SEM) images of lateral sides of the sample and retrieving the void areas within the micrographs/images using an image analysis technique. Segmentation for the retrieval and subsequent computation of void areas within the micrographs/images is challenging as the gray-scaled values of the void areas are close to the gray-scaled values of the matrix leading to the need of manually performing the segmentation based on the histogram of the micrographs/images to retrieve the void areas. The use of an algorithm developed by NASA and based on Fuzzy Reasoning (FR) proved to overcome the difficulty of suitably differentiate void and matrix image areas with similar gray-scaled values leading not only to a more accurate estimation of void areas on composite matrix micrographs but also to a faster void analysis process as the algorithm is fully autonomous.
Document ID
20130011582
Acquisition Source
Kennedy Space Center
Document Type
Preprint (Draft being sent to journal)
Authors
Dominquez, Jesus A.
(QinetiQ North America Kennedy Space Center, FL, United States)
Tate, Lanetra C.
(NASA Kennedy Space Center Cocoa Beach, FL, United States)
Wright, M. Clara
(NASA Kennedy Space Center Cocoa Beach, FL, United States)
Caraccio, Anne
(NASA Kennedy Space Center Cocoa Beach, FL, United States)
Date Acquired
August 27, 2013
Publication Date
January 1, 2013
Subject Category
Composite Materials
Report/Patent Number
KSC-2013-032
Funding Number(s)
CONTRACT_GRANT: NNK 11EA08C
Distribution Limits
Public
Copyright
Public Use Permitted.
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