Size effects in tension and constrained bending of paperboard
(2026) In Engineering Fracture Mechanics 345.- Abstract
This study investigates fracture initiation in tension and constrained bending of a three-ply paperboard. Size effects in tension are examined using two complementary approaches: Digital Image Correlation (DIC) based strain mapping on separated plies and tensile tests with varying gauge lengths. DIC of the tensile tests reveals persistent Localized Strain Zones (LSZ) with characteristic widths cf≈1.5–2.5 mm and peak local strains roughly twice the average tensile strain at failure. Tensile tests shows that nominal strength increases as length decreases and approaches a constant level when the specimen length becomes comparable to the LSZ-width. A constrained bending setup is developed to study fracture initiation under... (More)
This study investigates fracture initiation in tension and constrained bending of a three-ply paperboard. Size effects in tension are examined using two complementary approaches: Digital Image Correlation (DIC) based strain mapping on separated plies and tensile tests with varying gauge lengths. DIC of the tensile tests reveals persistent Localized Strain Zones (LSZ) with characteristic widths cf≈1.5–2.5 mm and peak local strains roughly twice the average tensile strain at failure. Tensile tests shows that nominal strength increases as length decreases and approaches a constant level when the specimen length becomes comparable to the LSZ-width. A constrained bending setup is developed to study fracture initiation under bending-dominated loading. Different pressing tool radii is used in the constrained bending test to investigate size dependency. Finite element simulations reproduce the global force–displacement response for the different bending cases but predict higher local strains than those obtained in tensile tests. For constrained bending, the simulated local strains at failure vary depending on pressing tool radius, implying that a failure criterion based solely on local strain cannot predict fracture initiation. The overall investigation indicates that fracture initiation in bending depends on how deformation localizes rather than on a peak local strain alone.
(Less)
- author
- Borgqvist, Eric
LU
; Claesson, Filip
; Wallin, Mathias
LU
; Ristinmaa, Matti
LU
and Engqvist, Jonas
LU
- organization
- publishing date
- 2026-10-10
- type
- Contribution to journal
- publication status
- published
- subject
- keywords
- Constrained bending, Fracture initiation, Localized Strain Zone (LSZ), Paperboard, Size effect
- in
- Engineering Fracture Mechanics
- volume
- 345
- article number
- 112510
- publisher
- Elsevier
- external identifiers
-
- scopus:105046717472
- ISSN
- 0013-7944
- DOI
- 10.1016/j.engfracmech.2026.112510
- language
- English
- LU publication?
- yes
- additional info
- Publisher Copyright: © 2026 The Authors.
- id
- 80c45006-e24a-43aa-a5ff-94ac90246873
- date added to LUP
- 2026-08-17 08:31:21
- date last changed
- 2026-08-18 15:30:36
@article{80c45006-e24a-43aa-a5ff-94ac90246873,
abstract = {{<p>This study investigates fracture initiation in tension and constrained bending of a three-ply paperboard. Size effects in tension are examined using two complementary approaches: Digital Image Correlation (DIC) based strain mapping on separated plies and tensile tests with varying gauge lengths. DIC of the tensile tests reveals persistent Localized Strain Zones (LSZ) with characteristic widths c<sub>f</sub>≈1.5–2.5 mm and peak local strains roughly twice the average tensile strain at failure. Tensile tests shows that nominal strength increases as length decreases and approaches a constant level when the specimen length becomes comparable to the LSZ-width. A constrained bending setup is developed to study fracture initiation under bending-dominated loading. Different pressing tool radii is used in the constrained bending test to investigate size dependency. Finite element simulations reproduce the global force–displacement response for the different bending cases but predict higher local strains than those obtained in tensile tests. For constrained bending, the simulated local strains at failure vary depending on pressing tool radius, implying that a failure criterion based solely on local strain cannot predict fracture initiation. The overall investigation indicates that fracture initiation in bending depends on how deformation localizes rather than on a peak local strain alone.</p>}},
author = {{Borgqvist, Eric and Claesson, Filip and Wallin, Mathias and Ristinmaa, Matti and Engqvist, Jonas}},
issn = {{0013-7944}},
keywords = {{Constrained bending; Fracture initiation; Localized Strain Zone (LSZ); Paperboard; Size effect}},
language = {{eng}},
month = {{10}},
publisher = {{Elsevier}},
series = {{Engineering Fracture Mechanics}},
title = {{Size effects in tension and constrained bending of paperboard}},
url = {{http://dx.doi.org/10.1016/j.engfracmech.2026.112510}},
doi = {{10.1016/j.engfracmech.2026.112510}},
volume = {{345}},
year = {{2026}},
}