Rational hyperelastic modelling of elastic poured compound for the failure analysis of embedded rail system

Journal Article (2022)
Author(s)

Li Wang (Southwest Jiaotong University, TU Delft - Railway Engineering)

S Li (TU Delft - Railway Engineering)

Ping Wang (Southwest Jiaotong University)

Rong Chen (Southwest Jiaotong University)

Zili Li (TU Delft - Railway Engineering)

Research Group
Railway Engineering
Copyright
© 2022 L. Wang, S. Li, Ping Wang, Rong Chen, Z. Li
DOI related publication
https://doi.org/10.1080/23248378.2022.2118183
More Info
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Publication Year
2022
Language
English
Copyright
© 2022 L. Wang, S. Li, Ping Wang, Rong Chen, Z. Li
Research Group
Railway Engineering
Issue number
6
Volume number
11
Pages (from-to)
833-854
Reuse Rights

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Abstract

The continuous homogeneous rail constraint of embedded rail system (ERS) is realized by the encapsulation of rails with the elastic poured compound (EPC) which is a composite material. Previous treatment of EPC as linear elastic material was insufficient in the failure analysis of ERS. In this work, a hyperelastic model is developed to describe the mechanical properties of the EPC with engineering strain up to 150%. Physical tests of uniaxial tension, planar tension and quadruple shear are conducted. A 4-parameter Ogden model is determined by curve fitting and validated with a progressive validation strategy, and then is applied to the failure analysis of ERS. It is found that the material nonlinearity of EPC contributes noticeably to the decrease of the longitudinal stiffness of ERS. The 2nd debonding is more probably caused by the failure of adhesive at the interface between EPC and rail rather than EPC itself.