1,163
Views
0
CrossRef citations to date
0
Altmetric
Research Articles

Lab-scale experimental analysis of the cyclic compaction-recovery characteristics of uncured thermoset prepreg

, , &

References

  • Lukaszewicz D, Potter K. Through-thickness compression response of uncured prepreg during manufacture by automated layup. Proc Inst Mech Eng B J Eng Manuf. 2012;226:193–202.
  • Lukaszewicz D, Ward C, Potter KD. The engineering aspects of automated prepreg layup: History, present and future. Compos B Eng. 2012;43:997–1009.
  • Blößl Y, Schledjewski R. A robust empirical model equation for the compaction response of textile reinforcements. Polym Compos. 2021;42(1):297–308.
  • Rogers TG. Squeezing flow of fibre-reinforced viscous fluids. J Eng Math. 1989;23(1):81–89.
  • Nixon-Pearson OJ, Belnoue J, Ivanov DS, et al. An experimental investigation of the consolidation behaviour of uncured prepregs under processing conditions. J Compos Mater. 2017;51:1911–1924.
  • Hubert P, Poursartip A. Aspects of the compaction of composite angle laminates: an experimental investigation. J Compos Mater. 2001;35(1):2–26.
  • Gutowski TG, Dillon G. The elastic deformation of lubricated carbon fiber bundles: comparison of theory and experiments. J Compos Mater. 1992;26:2330–2347.
  • Cai Z, Gutowski T. The 3-D deformation behavior of a lubricated fiber bundle. J Compos Mater. 1992;26:1207–1237.
  • Ivanov D, Li Y, Ward C, et al. Transitional behaviour of prepregs in automated fibre deposition processes. In: ICCM International Conferences on Composite Materials; 2013 July. International Committee on Composite Materials; 2013. p. 1381–1391.
  • Lichtinger R. Thermo-Mechanical coupled simulation of the thermoset automated fibre placement process [PhD dissertation]. Chair of Carbon Composites at the Technical University of Munich; 2015. mediaTUM. https://mediatum.ub.tum.de/1244909.
  • Engelhardt R, Irmanputra R, Brath K, et al. Thermoset prepreg compaction during automated fiber placement and vacuum debulking.pdf. Proc CIRP. 2019;85:153–158.
  • Belnoue J, Nixon-Pearson OJ, Ivanov D, et al. A novel hyper-viscoelastic model for consolidation of toughened prepregs under processing conditions. Mech Mater. 2016;97:118–134.
  • Naito Y, Nishikawa M, Mobuchon C, et al. Effect of rheological transitions in matrix resin on flow mechanism of carbon fiber/epoxy prepreg. Compos A Appl Sci Manuf. 2021;151:106612.
  • Sorba G, Binetruy C, Leygue A, et al. Squeeze flow in heterogeneous unidirectional discontinuous viscous prepreg laminates: experimental measurement and 3D modeling. Compos A Appl Sci Manuf. 2017;103:196–207.
  • Lukaszewicz D, Potter KD, Eales J. A concept for the in situ consolidation of thermoset matrix prepreg during automated lay-up. Compos B Eng. 2013;45(1):538–543.
  • Hexcel Corporation, Product data sheet HexPly 8552. n.d. 1–6.
  • Nairn JA. Effects carbon of fiber, matrix, fiber composite and interphase compression on strength. Contractor Report (CR). Document ID: 19940029731. Nasa Technical Reports Server; 1994.
  • Etchegaray Bello M, Engelhardt R, Drechsler K. Dataset for cyclic compaction-recovery behavior of CF/Epoxy/8552 multilayer samples. Technical University of Munich, mediaTUM; 2021. https://doi.org/https://doi.org/10.14459/2021mp1621517.
  • Engelhardt R, Brath K, Ebel C, et al. Experimental analysis of the compaction behavior of thermoset prepreg tapes during automated fiber placement. ECCM 2018 - 18th Eur Conf Compos Mater. 2018:24–28. https://www.researchgate.net/publication/349213807_Experimental_Analysis_of_the_Compaction_Behavior_during_Thermoset_Automated_Fiber_Placement.