Search

DIGITAL LIBRARY: SAMPE 2025 | INDIANAPOLIS, IN | MAY 19-22

Get This Paper

Enhancing Composite Micrograph Analysis with Semantic Segmentation

Description

Title: Enhancing Composite Micrograph Analysis with Semantic Segmentation

Authors: Jonas Naumann, Jonas Appels, Philipp Sämann, Timo de Wolff, Christoph Brauer

DOI: 10.33599/nasampe/s.25.0098

Abstract: The realization of future hydrogen-powered aircraft requires the development of liquid hydrogen storage tanks, possibly made of fiber composite materials, that must meet stringent leak tightness requirements under cryogenic temperature conditions. A typical challenge in the production of fiber composite components is that the material and the component are simultaneously formed by the interaction of fiber architecture, auxiliary materials, and manufacturing parameters in the production process, resulting in a high risk of unwanted inhomogeneities. Visual inspection of micrographs is standard practice to assess material and process parameters, but it involves high manual effort and leads to hardly quantifiable results. In this paper, we discuss the use of semantic segmentation to inspect micrographs with a special focus on crack formation. We present our data labeling process and machine learning models that achieve high segmentation accuracy. We also provide two post-model tools to assist domain experts in crack detection and local fiber volume ratio analysis. The proven segmentation accuracy allows us to state that our semantic segmentation model greatly simplifies, accelerates, and quantifies the analysis of fiber composite micrographs.

References: 1. Quilter, A. Composites in aerospace applications. IHS White Paper, 444(1), 264,2001. 2. Ahmad, H., Markina, A. A., Porotnikov, M. V., & Ahmad, F. A review of carbon fiber materials in automotive industry. In IOP Conference Series: Materials Science and Engineering (Vol. 971, No. 3, p. 032011),2020. IOP Publishing. DOI:10.1088/1757899X/971/3/032011 3. Pawlak, A. M., Górny, T., Dopierała, Ł., & Paczos, P. The use of CFRP for structural reinforcement-literature review. https://doi.org/10.3390/met12091470 Metals, 12(9),1470,2022. 4. Sayam, A., Rahman, A. M., Rahman, M. S., Smriti, S. A., Ahmed, F., Rabbi, M. F., ... & Faruque, M. O. A review on carbon fiber-reinforced hierarchical composites: mechanical performance, manufacturing process, structural applications and allied challenges. Carbon Letters, 32(5), 1173-1205,2022. DOI:10.1007/s42823-022-00358 5. Choi, J. H., Jang, J., Shim, W., Cho, J. M., Yoon, S. J., Choi, C. H., ... & Yu, W. R. Determination of the in-plane shear modulus of unidirectional carbon fiber-reinforced plastics using digital image correlation and finite-element analysis. Composite Structures, 229, 111392, 2019. http://dx.doi.org/10.1016/j.compstruct.2019.111392 6. Wisnom, M. R. The role of delamination in failure of fibre-reinforced composites. Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, 370(1965), 1850-1870, 2012. https://doi.org/10.1098/rsta.2011.0441 7. Hsiao, K. T., Scruggs, A. M., Brewer Jr, J. S., Hickman, G. J., McDonald, E. E., & Henderson, K. Effect of carbon nanofiber z-threads on mode-I delamination toughness of carbon fiber reinforced plastic laminates. Composites Part A: Applied Science and Manufacturing, 91, 324-335,2016. http://dx.doi.org/10.1016/j.compositesa.2016.10.022 8. Taylor, W. W., Uddin, M. N., Islam, M. R., Dizbay-Onat, M., & Hsiao, K. T. A preliminary study of using film adhesives containing aligned and unaligned nanotubes and nanofibers for bonding CFRP laminates and steel plates. SAMPE, Charlotte, NC 2022. http://dx.doi.org/10.33599/nasampe/s.22.0752 9. Kirmse, S., & Hsiao, K. T. Enhancing the interlaminar shear strength of unidirectional carbon fiber reinforced plastic (CFRP) laminate using a nanofiber z-threading strategy. Proceedings of the Composites and Advanced Materials Expo (CAMX), Dallas, TX, 2018. 10. Kirmse, S., Kim, K., Ranabhat, B., & Hsiao, K. T. Effects of carbon nanofiber z-threads on the longitudinal compressive strength of unidirectional cfrp laminates. SAMPE Charlotte, NC, 2019. http://dx.doi.org/10.33599/nasampe/s.19.1531 11. Scruggs, A. M., Kirmse, S., & Hsiao, K. T. Enhancement of Through‐Thickness Thermal Transport in Unidirectional Carbon Fiber Reinforced Plastic Laminates due to the Synergetic Role of Carbon Nanofiber Z‐Threads. Journal of Nanomaterials,2019 http://dx.doi.org/10.1155/2019/8928917 12. Ranabhat, B., & Hsiao, K. T. Improve the through-thickness electrical conductivity of CFRP laminate using flow-aligned carbon nanofiber z-threads. SAMPE, Long Beach, CA,2018. 13. ASTM D3518/D3518M-18 “Standard Test Method for In-Plane Shear Response of Polymer Matrix Composite Materials by Tensile Test of a ± 45° Laminate”, West Conshohocken, PA: ASTM International; (2018), doi: 10.1520/D3518_D3518M-1. 14. McDonald, E. E., Wallace, L. F., Hickman, G. J., & Hsiao, K. T. Manufacturing and Shear Response Characterization of Carbon Nanofiber Modified CFRP Using the Out‐ofAutoclave‐Vacuum‐Bag‐Only Cure Process. The Scientific World Journal, 2014(1). https://doi.org/10.1155/2014/830295 15. Swanson, S. R., Messick, M., & Toombes, G. R. Comparison of torsion tube and Iosipescu in-plane shear test results for a carbon fibre-reinforced epoxy composite. Composites, 16(3), 220-224,1985. https://doi.org/10.1016/0010-4361(85)90605-6 16. Totry, E., Molina-Aldareguía, J. M., González, C., & LLorca, J. Effect of fiber, matrix and interface properties on the in-plane shear deformation of carbon-fiber reinforced composites. Composites Science and Technology, 2010. http://dx.doi.org/10.1016/j.compscitech.2010.02.014 17. Hsiao, K-T and Kirmse, S. Novel liquid matrix impregnation method and apparatus for composite prepreg production. US Patent Application No.: 20240149541A1. https://patents.google.com/patent/US20240149541A1

Conference: SAMPE 2025

Publication Date: 2025/05/19

SKU: TP25-0000000098

Pages: 15

Price: $30.00

Get This Paper