Motevalli, Mehran; Uhlemann, Jörg; Stranghöner, Natalie; Balzani, Daniel:
The elastic share of inelastic stress-strain paths of woven fabrics
In: Materials, Vol. 13 (2020), No. 19, p. 4243
2020article/chapter in journalOA Gold
Civil EngineeringFaculty of Engineering » Bauwissenschaften » Bauingenieurwesen » Metall- und Leichtbau
Related: 1 publication(s)
Title in English:
The elastic share of inelastic stress-strain paths of woven fabrics
Author:
Motevalli, Mehran
ORCID
0000-0001-7585-5079ORCID iD
;
Uhlemann, JörgUDE
GND
1093217618
LSF ID
49817
ORCID
0000-0001-9542-7055ORCID iD
Other
connected with university
;
Stranghöner, NatalieUDE
GND
132426447
LSF ID
49533
ORCID
0000-0002-1160-7989ORCID iD
Other
connected with university
;
Balzani, DanielUDE
LSF ID
14642
ORCID
0000-0002-1422-4262ORCID iD
Other
connected with university
Year of publication:
2020
Open Access?:
OA Gold
Web of Science ID
Scopus ID
Note:
CA extern
Language of text:
English
Keyword, Topic:
Elastic modeling ; Stress-strain behavior ; Structural analysis ; Structural fabric ; Viscoelastic material response

Abstract in English:

Manifold variations of the mechanical behavior of structural woven fabrics appear in the first load cycles. Nevertheless, invariable states, i.e., mechanically saturated states, can be approached by multiple monotonous load cycle biaxial tests. In a state acceptably close to the ideal saturated state, the stress-strain paths reveal the elastic share of the initially inelastic stress-strain paths of woven fabrics. In this paper, the mechanical saturation behavior of two types of PTFE-coated woven glass fiber fabrics is examined and compared to the recently reported saturation behavior of a PVC-coated polyester fabric. With the help of the saturation test data, an extrapolation function is developed that facilitates an estimation of late cycle stiffness behavior based on measured early cycle behavior. Furthermore, the considerable impact of late cycle properties on structural analyses is shown exemplarily in the numerical simulation of a prestressed fabric structure by comparing results achieved from late and early load cycle stiffness parameters.