PSI - Issue 57

J. Torggler et al. / Procedia Structural Integrity 57 (2024) 152–160 Author name / Structural Integrity Procedia 00 (2019) 000 – 000

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References

Bešter, T., Fajd ga, M., and Nagode, M. (2014)

l at ono Constant m l t de ynam Tests or e Pred t ono r r ings at Various

Control Parameters. trojn šk vestn k – Journal of Mechanical Engineering, 60(4), 241 – 249. Carsten, M. (1995) Simulation des Verhaltens von textilen Festigkeitsträgern in CordGummiKompositen. dissertation, Hannover. Cho, J., Yoon, Y. H.,Seo, C. W., andKim, Y. G. (2015) Fatigue lifeassessment offabric braidedcomposite rubber hose in co mplicated large deformation cyclic motion. Finite Elements in Analysis and Design, 100, 65 – 76. DIN 50100 (2022) Schwingfestigkeitsversuch_- Durchführung und Auswertung von zyklischen Versuchen mit konstanter Lastamplitude für metallische Werkstoffproben und Bauteile, Beuth Verlag GmbH, Berlin. Donner, H. (2017) FEM-basierte Modellierung stark anisotroper Hybridcord-Elastomer-Verbunde. Dissertation, University of Chemnitz. Eitzen, A., Flamm,M., Steinweger, T., and Weltin, U. (2018) On the lifetimeprediction of rolling lobe air springs.Engineering Failure Analysis, 94, 313 – 326. EN 13597:2003 E (2008) Railway applications - Rubber suspension components - Rubber diaphragms for pneumatic suspension springs;, Beuth Verlag GmbH, Berlin. Förster, K. (2012) Ein Beitrag zur Untersuchung der Lebensdauerabschätzung und des Walkverhaltens von Luftfederbälgen mittels statistischer Methoden. Zugl.: Hamburg, Helmut-Schmidt-Univ., Diss., 2012, Shaker, Aachen. Frankl, S., Pletz, M., and Schuecker,C. (2019) Incremental finite element delamination model for fibre pull-out tests of elastomer-matrix composites. Procedia Structural Integrity, 17, 51 – 57. Kenney, M. C., Mandell, J. F., and McGarry, F. J. (1985) Fatigue behaviour of synthetic fibres, yarns, and ropes. Liu Yu, Y., Tan Hui, F., Wan Zhi, M., and Du Xing, W. (1999) Experimental and theoretical studies for fatigue behavior of pol yester cord reinfrced rubber composites. Oman, S., Fajdiga, M., and Nagode, M. (2010) Estimation of air-spring life based on accelerated experiments. Materials & Design, 31(8), 3859 – 3868. Oman, S. and Nagode, M. (2013) On the influence of the cord angle on air-spring fatigue life. Engineering Failure Analysis, 27, 61 – 73. Pelz, P., Brüger, T., and Merk, J. (2007) Numerische Festigkeitsauslegung von Luftfedern. Materials Testing, 49(9), 447 – 454. Pidaparti, R. (1997) Analysis of cord-rubber composite laminates under combined tension and torsion loading. Composites Part B: Engineering, 28(4), 433 – 438. Pidaparti, R. and May, A. (2001) Micromechanical analysis of fatigue cracks in cord – rubber composites. Composite Structures, 54(4), 459 – 465. Polley, A. (1999) Zur Korrelation von Simulationsrechnungen und Ausfallphänomenen bei Rollbalgluftfedern. Dissertation. Rao, S., Daniel, I. M., and Gdoutos, E. E. (2004) Mechanical Properties and Failure Behavior of Cord/Rubber Composites. Appli ed Composite Materials, 11(6), 353 – 375. Shi, X., Lian, C., Shang, Y., and Zhang, H. (2015) Evolution of the dynamic fatigue failure of the adhesion between rubber an d polymer cords. Polymer Testing, 48, 175 – 182. Tao, Y., Windslow, R., Stevens, C. A., Bilotti, E., Peijs, T., and Busfield, J. J. (2018) Development of a novel fatigue test method for cord-rubber composites. Polymer Testing, 71, 238 – 247. Tian, Z., Song, H., Wan, Z., and Du, X. (2001) Fatigue Properties of Steel Cord -Rubber Composite. Journal of Elastomers & Plastics, 33(4), 283 – 296. Torggler, J., Dutzler, A., Oberdorfer, B., Faethe, T., Müller, H., Buzzi, C., and Leitner, M. (2023) Investigating Damage Mec hanisms in Cord Rubber Composite Air Spring Bellows of Rail Vehicles and Representative Specimen Design. Applied Composite Materials, 1 – 21. Wode, S. (1995) Experimentelle Untersuchungen zum Ermüdungsverhalten von Rollbalg-Luftfedern. dissertation, Hannover.

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