Characterization and Modeling of Out-of-Plane Behavior of Fiber-Based Materials: Numerical Illustration of Wrinkle in Deep Drawing

Author:

Sanjon Cedric W.1ORCID,Leng Yuchen2ORCID,Yan Yi2,Groche Peter2ORCID,Hauptmann Marek1,Ludat Nicole1,Majschak Jens-Peter13

Affiliation:

1. Fraunhofer Institute for Process Engineering and Packaging IVV, 01189 Dresden, Germany

2. TU Darmstadt Institute for Production Engineering and Forming Machines, 64287 Darmstadt, Germany

3. TU Dresden Institute for Processing Machines and Processing Technology, 01062 Dresden, Germany

Abstract

The characterization and modeling of the out-of-plane behavior of fiber-based materials is essential for understanding their mechanical properties and improving their performance in various applications, especially in the forming process. Despite this, research on paper and paperboard has mainly focused on its in-plane behavior rather than its out-of-plane behavior. However, for accurate material characterization and modeling, it is critical to consider the out-of-plane behavior. In particular, delamination occurs during forming processes such as creasing, folding, and deep drawing. In this study, three material models for paperboard are presented: a single all-material continuum model and two composite models using different cohesion methods. The two composite models decouple in-plane and out-of-plane behavior and consist of continuum models describing the behavior of individual layers and cohesive interface models connecting the layers. Material characterization experiments are performed to derive the model parameters and verify the models. The models are validated using three-point bending and bulge tests and show good agreement. A case study is also conducted on the application of the three models in the simulation of a deep drawing process with respect to wrinkle formation. By comparing the simulation results of wrinkle formation in the deep drawing process, the composite models, especially the cohesive interface composite model, show greater accuracy in replicating the experimental results, indicating that a single continuum model can also be used to represent wrinkles.

Funder

German Research Foundation

Publisher

MDPI AG

Reference30 articles.

1. Short compression testing of multi-ply paperboard, influence from shear strength;Hagman;Nord. Pulp Pap. Res. J.,2016

2. A review of recent trends and challenges in computational modeling of paper and paperboard at different scales;Simon;Arch. Comput. Methods Eng.,2021

3. Explicit FEM analysis of the deep drawing of paperboard;Wallmeier;Mech. Mater.,2015

4. Delamination in the scoring and folding of paperboard;Choi;Tappi,2012

5. Dunn, H.M. (2000). Micromechanisms of Paperboard Deformation. [Ph.D. Thesis, Massachusetts Institute of Technology].

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