Open Access
Issue
MATEC Web Conf.
Volume 165, 2018
12th International Fatigue Congress (FATIGUE 2018)
Article Number 08001
Number of page(s) 8
Section Fatigue of Polymers and Elastomers
DOI https://doi.org/10.1051/matecconf/201816508001
Published online 25 May 2018
  1. A. Zago, G. Springer, Fatigue lives of short _ber reinforced thermoplastics parts, Journal of Reinforced Plastics and Composites 20 (2001) 606-620. [CrossRef] [Google Scholar]
  2. C. Sonsino, E. Moosbrugger, Fatigue design of highly loaded short-glass-fibre reinforced polyamide parts in engine compartments, International Journal of Fatigue 30 (2008) 1279-1288. [CrossRef] [Google Scholar]
  3. Klimkeit, B., Etude expérimentale et modélisation du comportement en fatigue multiaxiale d'un polymère renforcé pour application automobile, Ph.D. thesis, ENSMA (2014). [Google Scholar]
  4. A. Bernasconi, P. Davoli, C. Armanni, Fatigue strength of a clutch pedal made of reprocessed short glass fibre reinforced polyamide, International Journal of Fatigue 32 (2010) 100-107. [CrossRef] [Google Scholar]
  5. Serrano, L., Thermomechanical characterization of the fatigue behaviour of short fibers reinforced thermoplastic, Ph.D. thesis, Université de Bretagne Occidentale (2015). [Google Scholar]
  6. S. Mortazavian, A. Fatemi, Fatigue behavior and modeling of short fiber reinforced polymer composites: A literature review, International Journal of Fatigue 70 (2015) 297-321. [CrossRef] [Google Scholar]
  7. M. De Monte, E. Moosbrugger, M. Quaresimin, Inuence of temperature and thickness on the off-axis behaviour of short glass fibre reinforced polyamide 6.6 - quasi-static loading, Composites Part A: Applied Science and Manufacturing 38 (2010) 859-871. [CrossRef] [Google Scholar]
  8. B. Klimkeit, Y. Nadot, S. Castagnet, C. Nadot-Martin, C. Dumas, S. Bergamo, C. Sonsino, A. Buter, Multiaxial fatigue life assessment for reinforced polymers, International Journal of Fatigue 33 (2011) 766-780. [CrossRef] [Google Scholar]
  9. A. Launay, M. Maitournam, Y. Marco, I. Raoult, Multiaxial fatigue models for short glass fiber reinforced polyamide. Part II: fatigue life estimation, International Journal of Fatigue 47 (2013) 390-406. [CrossRef] [Google Scholar]
  10. A. Launay, Y. Marco, M. Maitournam, I. Raoult, Modelling the inuence of temperature and relative humidity on the time-dependent mechanical behaviour of a short glass fibre reinforced polyamide, Mechanics of Materials 56 (2013) 1-10. [CrossRef] [Google Scholar]
  11. L. Serrano, Y. Marco, V. Le Saux, G. Robert, P. Charrier, Fast prediction of the fatigue behavior of short-fiber-reinforced thermoplastics based on heat build-up measurements: application to heterogeneous cases, Continuum Mechanics and Thermodynamics 29 (2017) 1113-1133. [CrossRef] [Google Scholar]
  12. C. Stromeyer, The determination of fatigue limits under alternating stress conditions, Proceedings of the Royal Society of London. Series A. 90 (1914) 411-425. [Google Scholar]
  13. H. Moore, J. Kommers, Fatigue of metals under repeated stress, Chemical and Metallurgical Engineering 25 (1921) 1141-1144. [Google Scholar]
  14. A. Galtier, Contribution à l'étude de l'endommagement des aciers sous sollicitations uni ou multiaxiales, Ph.D. thesis, ENSAM (1993). [Google Scholar]
  15. M. Luong, Fatigue limit evaluation of metals using an infrared thermographic technique, Mechanics of Materials 28 (1998) 155-163. [Google Scholar]
  16. J. Krapez, D. Pacou, G. Gardette, Lock-in thermography and fatigue limit of metals, in: Proceedings of QIRT'2000, Reims, 2000, pp. 277-282. [Google Scholar]
  17. G. La Rosa, A. Risitano, Thermographic methodology for rapid determination of the fatigue limit of materials and mechanical components, International Journal of Fatigue 22 (2001) 65-73. [Google Scholar]
  18. C. Doudard, S. Calloch, F. Hild, P. Cugy, A. Galtier, Identification of scatter in high cycle fatigue from temperature measurements, Comptes Rendus M_ecanique 10 (2004) 795-801. [CrossRef] [Google Scholar]
  19. A. Ezanno, C. Doudard, S. Calloch, J. Heuzé, A new approach to characterizing and modeling the high cycle fatigue properties of cast materials based on self-heating measurements under cyclic loadings, International Journal of Fatigue 47 (2004) 232-243. [CrossRef] [Google Scholar]
  20. R. Munier, C. Doudard, S. Calloch, B. Weber, Determination of high cycle fatigue properties of a wide range of steel sheet grades from self-heating measurements, International Journal of Fatigue 63 (2014) 46-61. [CrossRef] [Google Scholar]
  21. A. Chrysochoos, H. Louche, An infrared image processing to analyse the calori_c e_ects accompanying strain localisation, International Journal of Engineering Science 38 (2000) 1759-1788. [CrossRef] [Google Scholar]
  22. V. Le Saux, C. Doudard, Proposition of a compensated pixelwise calibration for photonic infrared cameras and comparison to classic calibration procedures: case of thermoelastic stress analysis, Infrared Physics and Technology 80 (2017) 83-92. [CrossRef] [Google Scholar]
  23. V. Le Saux, Y. Marco, C. Doudard, S. Calloch, P. Charrier, Fast evaluation of the fatigue lifetime of rubber-like materials based on a heat build-up protocol and micro-tomography measurements, International Journal of Fatigue 32 (2010) 1582-1590. [CrossRef] [Google Scholar]
  24. C. Cruanes, G. Berton, F. Lacroix, S. Meo, N. Ranganathan, Study of the fatigue behavior of the chloroprene rubber for uniaxial tests with infrared method, Elastomery 18 (2014) 3-9. [Google Scholar]
  25. Y. Marco, I. Masquelier, V. Le Saux, P. Charrier, Fast prediction of the W◻ohler curve from thermal measurements for a wide range of NR and SBR compounds, Rubber Chemistry and Technology 90 (2017) 487-507. [CrossRef] [Google Scholar]
  26. T. L., M. Karama, B. Lorrain, Damage evolution and infrared thermography in woven composite laminates under fatigue loading, International Journal of Fatigue 28 (2006) 1867-1872. [CrossRef] [Google Scholar]
  27. M. Liakat, K. Khonsari, Analysis and life prediction of a composite laminate under cyclic loading, Composites Part B: Engineering 84 (2016) 98-108. [CrossRef] [Google Scholar]
  28. G. Meneghetti, M. Quaresimin, Fatigue strength assessment of a short fiber composite based on the specific heat dissipation, Composites Part B: Engineering 42 (2011) 217-225. [CrossRef] [Google Scholar]
  29. L. Jégou, Y. Marco, V. Le Saux, S. Calloch, Fast prediction of the wöhler curve from heat build-up measurements on short fiber reinforced thermoplastics, International Journal of Fatigue 47 (2012) 259-267. [CrossRef] [Google Scholar]
  30. M. Poncelet, C. Doudard, S. Calloch, B. Weber, F. Hild, Probabilistic multiscale models and measurements of selfheating under multiaxial high cycle fatigue, Journal of the Mechanics and Physics of Solids 58 (2010) 578-593. [CrossRef] [Google Scholar]
  31. V. Le Saux, Y. Marco, S. Calloch, P. Charrier, Evaluation of the fatigue defect population in an elastomer using x-ray computed micro-tomography, Polymer Engineering and Science 51 (2011) 1253-1263. [CrossRef] [Google Scholar]
  32. Y. Marco, B. Huneau, I. Masquelier, V. Le Saux, P. Charrier, Prediction of fatigue properties of natural rubber based on the descriptions of the cracks population and of the dissipated energy, Polymer Testing 59 (2017) 67-74. [CrossRef] [Google Scholar]
  33. A. Constantinescu, K. Dang Van, M. Maitournam, A unified approach for high and low cycle fatigue based on shakedown concepts, Fatigue and Fracture of Engineering Materials and Structures 26 (2003) 1065-1077. [CrossRef] [Google Scholar]
  34. A. Benoit, M. Maitournam, L. Rémy, F. Oger, Cyclic behaviour of structures under thermomechanical loadings: Application to exhaust manifolds, International Journal of Fatigue 38 (2012) 65-74. [CrossRef] [Google Scholar]
  35. A. Drozdov, A. Al-Mulla, R. Gupta, Finite viscoplasticity of polycarbonate reinforced with short glass fibers, Mechanics of Materials 37 (2005) 473-491. [CrossRef] [Google Scholar]
  36. H. Nouri, F. Meraghni, P. Lory, Fatigue damage model for injection-molded short glass fibre reinforced thermoplastics, International Journal of Fatigue 31 (2009) 934-942. [CrossRef] [Google Scholar]
  37. A. Andriyana, N. Billon, L. Silva, Mechanical response of a short fiber-reinforced thermoplastic: experimental investigation and continuum mechanical loading, European Journal of Mechanics A 29 (2010) 1065-1077. [CrossRef] [Google Scholar]
  38. A. Launay, M. Maitournam, Y. Marco, I. Raoult, F. Szmytka, Cyclic behaviour of short glass fibre reinforced polyamide: experimental study and constitutive equations, International Journal of Plasticity 27 (2011) 1267-1293. [CrossRef] [Google Scholar]
  39. M. Arif, F. Meraghni, N. Chemisky, Y. ad Despringre, G. Robert, In situ damage mechanisms investigation of PA66/GF30 composite: effect of relative humidity, Composites Part B: Engineering 58 (2014) 487-495. [CrossRef] [Google Scholar]
  40. H. Rolland, N. Saintier, P. Wilson, J. Merzeau, G. Robert, In situ X-ray tomography investigation on damage mechanisms in short glass fibre reinforced thermoplastics: Effects of fibre orientation and relative humidity, Composites Part B: Engineering 109 (2017) 1359-1368. [CrossRef] [Google Scholar]
  41. A. Launay, M. Maitournam, Y. Marco, I. Raoult, Multiaxial fatigue models for short glass fiber reinforced polyamide. Part I: nonlinear anisotropic constitutive behavior for cyclic response, International Journal of Fatigue 47 (2013) 382-389. [CrossRef] [Google Scholar]
  42. A. Krairi, I. Doghri, A thermodynamically-based constitutive model for thermoplastic polymers coupling viscoelasticity, viscoplasticity and ductile damage, International Journal of Plasticity 60 (2014) 163-181. [CrossRef] [Google Scholar]
  43. I. Masquelier, Y. Marco, V. Le Saux, S. Calloch, P. Charrier, Determination of dissipated energy fields from temperature mappings on a rubber-like structural sample: Experiments and comparison to numerical simulations, Mechanics of Materials 80 (2015) 113-123. [CrossRef] [Google Scholar]
  44. Y. Marco, V. Le Saux, L. J_egou, A. Launay, L. Serrano, I. Raoult, S. Calloch, Dissipation analysis in SFRP structural samples: thermomechanical analysis and comparison to numerical simulations, International Journal of Fatigue 67 (2014) 142-150. [CrossRef] [Google Scholar]
  45. V. Le Saux, Belenos users manual, Internal report. ENSTA Bretagne (2017). [Google Scholar]
  46. L. Leveuf, L. Navratil, V. Le Saux, Y. Marco, J. Olhagaray, S. Leclercq, Constitutive equations for the cyclic behaviour of short carbon fibre-reinforced thermoplastics and identification on a uniaxial database, Continuum Mechanics and Thermodynamics accepted (2018) 1-20. [Google Scholar]
  47. L. Leveuf, Y. Marco, V. Le Saux, J. Olhagaray, S. Leclercq, Fast screening of the fatigue properties of thermoplastics reinforced with short carbon fibers based on thermal measurements, Submitted to Polymer Testing (January, 2018) [Google Scholar]

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