Title of article :
Multiaxial deformation and strain-induced crystallization around a fatigue crack in natural rubber
Author/Authors :
P. Rublon، نويسنده , , Pierre and Huneau، نويسنده , , Bertrand and Verron، نويسنده , , Erwan and Saintier، نويسنده , , Nicolas and Beurrot، نويسنده , , Stéphanie and Leygue، نويسنده , , Adrien and Mocuta، نويسنده , , Cristian and Thiaudière، نويسنده , , Dominique and Berghezan، نويسنده , , Daniel، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2014
Pages :
11
From page :
59
To page :
69
Abstract :
The study of fatigue crack propagation in elastomers is an essential prerequisite to improve the service life of tire products. Natural rubber is a key compound in tires, because of its unique mechanical properties and more particularly its remarkable resistance to fatigue crack growth as compared to synthetic rubbers. To explain this resistance, the literature often mentions the phenomenon of strain-induced crystallization which takes place at fatigue crack tips in natural rubber and then reinforces it. In the present study, an original experimental set-up that couples synchrotron radiation with a homemade mechanical fatigue machine is developed to investigate both strain-induced crystallization and deformation multiaxiality around fatigue cracks in natural rubber. During uninterrupted fatigue tests, recording of wide-angle X-ray diffraction patterns is performed in the crack tip region providing the two-dimensional spatial distribution of both crystallinity and principal strain directions. In particular, the influence of loading conditions on the size of the crystallized zone is investigated and related to fatigue crack growth rates. Finally, measurements of deformation multiaxiality, i.e. principal strain directions and change in thickness, obtained by this method are successfully compared with digital image correlation results.
Keywords :
fatigue crack , Natural rubber , Strain-induced crystallization , Synchrotron radiation , digital image correlation
Journal title :
ENGINEERING FRACTURE MECHANICS
Serial Year :
2014
Journal title :
ENGINEERING FRACTURE MECHANICS
Record number :
2344272
Link To Document :
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