INFORMAZIONI SU QUESTO ARTICOLO

Cita

1. Arruda E. M., Boyce M. C. (2000), Constitutive models of rubber elasticity: a review, Rubber Chemistry and Technology, 73(3), 504-523.10.5254/1.3547602Search in Google Scholar

2. Banić M. S., et al. (2012), Prediction of heat generation in rubber or rubber-metal springs, Thermal Science, 16, Suppl. 2, 527-539.Search in Google Scholar

3. Baranowski P., Bogusz P., Gotowicki P., Małachowski J. (2012), Assessment of mechanical properties of off-road vehicle tire: coupons testing and FE model development, Acta Mechnica et Automatica, 6(2), 17-22.Search in Google Scholar

4. Bower A. F. (2010), Applied mechanics of solids, CRC Press, Boca Raton.Search in Google Scholar

5. Chokanandsombat Y., Sirisinha C. (2013), MgO and ZnO as reinforcing fillers in cured polychloroprene rubber, Journal of Applied Polymer Science, 128(4), 2533-2540.10.1002/app.38579Search in Google Scholar

6. Gent A. N., Suh J. B., Kelly S. G. (2007), Mechanics of rubber shear springs, International Journal of Non-Linear Mechanics, 42(4), 241 – 249.10.1016/j.ijnonlinmec.2006.11.006Search in Google Scholar

7. Hassan M. A., Abouel-Kasem A., Mahmoud A. El-Sharief, Yusof F. (2012), Evaluation of the material constants of nitrile butadiene rubbers (NBRs) with different carbon black loading (CB): FE-simulation and experimental, Polymer, 53(17), 3807-3814.10.1016/j.polymer.2012.06.032Search in Google Scholar

8. ISO 7743 (2011), Rubber, vulcanized or thermoplastic – Determination of compression stress-strain properties.Search in Google Scholar

9. Kim B., Lee S. B., Lee J., Cho S., Park H., Yeom S., Park S. H. (2012), A comparison among Neo-Hookean model, Mooney-Rivlin model and Ogden model for chloroprene rubber, International Journal of Precision Engineering and Manufacturing, 13(5), 759-764.10.1007/s12541-012-0099-ySearch in Google Scholar

10. Lee B. S., Rivin E. I. (1996), Finite element analysis of load-deflection and creep characteristics of compressed rubber components for vibration control devices, ASME Journal of Mechanical Design, 118, 328-336.10.1115/1.2826888Search in Google Scholar

11. Lu Y.T., Zhu H. X., Richmond S., Middleton J. (2010), A visco-hyperelastic model for skeletal muscle tissue under high strain rates, Journal of Biomechanics, 43(13), 2629-2632.10.1016/j.jbiomech.2010.05.030Search in Google Scholar

12. Luo R. K., Mortel W. J., Wu X. P. (2009), Fatigue failure investigation on anti-vibration springs, Engineering Failure Analysis, 16(5), 1366-1378.10.1016/j.engfailanal.2008.09.005Search in Google Scholar

13. Mars W. V., Fatemi A. (2002), A literature survey on fatigue analysis approaches for rubber, International Journal of Fatigue, 24(9), 949-961.10.1016/S0142-1123(02)00008-7Search in Google Scholar

14. Mooney M. (1940), A theory of large elastic deformation, Journal of Applied Physics, 11(9), 582-592.10.1063/1.1712836Search in Google Scholar

15. Neidhart H. (1951), Elastic joints, US patent 2 712 742.Search in Google Scholar

16. Neidhart R. (1969), Special spring unit, Rubbers Handbook, Morgan-Grampian, London.Search in Google Scholar

17. Paluch M. (2006), Fundamentals of the Theory of Elasticity and Plasticity, Wydawnictwo Politechniki Krakowskiej, Kraków (in Polish).Search in Google Scholar

18. Rivin E. I. (2003), Passive vibration isolation, ASME Press, New York.10.1115/1.80187XSearch in Google Scholar

19. Rivin E. I., Lee B. S. (1994), Experimental study of load-deflection and creep characteristics of compressed rubber components for vibration control devices, ASME Journal of Mechanical Design, 116, 539-549.10.1115/1.2919412Search in Google Scholar

20. Rivlin R. S. (1948), Large elastic deformations of isotropic materials. IV. Further developments of the general theory, Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences, 241(835), 379-397.Search in Google Scholar

21. Samaca Martinez J.R., Le Cam J.-B., Balandraud X., Toussaint E., Caillard J. (2013), Filler effects on the thermomechanical response of stretched rubbers, Polymer Testing, 32(5), 835-841.10.1016/j.polymertesting.2013.04.003Search in Google Scholar

22. Wodziński P. (2003), Application of elastic rubber suspensions in vibrating screens and feeders (in Polish), Inżynieria Mineralna, 3, 109-114.Search in Google Scholar

23. http://www.rosta.chSearch in Google Scholar