Bamboo/Wood Composites and Structures Shear and Normal Strain Distributions in Multilayer Composite Laminated Panels under Out-of-Plane Bending
Innovative mass timber panels, known as composite laminated panels (CLP), have been developed using lumber and laminated strand lumber (LSL) laminates. In this study, strain distributions of various 5-layer CLP and cross-laminated timber (CLT) were investigated by experimental and two modelling meth...
Main Authors: | , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Hindawi Limited
2021-01-01
|
Series: | Advances in Civil Engineering |
Online Access: | http://dx.doi.org/10.1155/2021/6637853 |
id |
doaj-7b51c764493e46069e35e45d3be1ee46 |
---|---|
record_format |
Article |
spelling |
doaj-7b51c764493e46069e35e45d3be1ee462021-02-15T12:52:54ZengHindawi LimitedAdvances in Civil Engineering1687-80861687-80942021-01-01202110.1155/2021/66378536637853Bamboo/Wood Composites and Structures Shear and Normal Strain Distributions in Multilayer Composite Laminated Panels under Out-of-Plane BendingJan Niederwestberg0Jianhui Zhou1Ying Hei Chui2Dongsheng Huang3Department of Civil & Environmental Engineering, University of Alberta, Edmonton T6G 1H9, CanadaSchool of Engineering, University of Northern British Columbia, Prince George V2N 4Z9, CanadaDepartment of Civil & Environmental Engineering, University of Alberta, Edmonton T6G 1H9, CanadaNational Engineering Research Center of Biomaterials, Nanjing Forestry University, Nanjing 210037, ChinaInnovative mass timber panels, known as composite laminated panels (CLP), have been developed using lumber and laminated strand lumber (LSL) laminates. In this study, strain distributions of various 5-layer CLP and cross-laminated timber (CLT) were investigated by experimental and two modelling methods. Seven (7) different panel types were tested in third-point bending and short-span shear tests. During the tests, the digital imaging correlation (DIC) technique was used to measure the normal and shear strain in areas of interest. Evaluated component properties were used to determine strain distributions based on the shear analogy method and finite element (FE) modelling. The calculated theoretical strain distributions were compared with the DIC test results to evaluate the validity of strain distributions predicted by the analytical model (shear analogy) and numerical model (FE analysis). In addition, the influence of the test setup on the shear strain distribution was investigated. Results showed that the DIC strain distributions agreed well with the ones calculated by the shear analogy method and FE analysis. Both theoretical methods agree well with the test results in terms of strain distribution shape and magnitude. While the shear analogy method shows limitations when it comes to local strain close to the supports or gaps, the FE analysis reflects these strain shifts well. The findings support that the shear analogy is generally applicable for the stress and strain determination of CLP and CLT for structural design, while an FE analysis can be beneficial when it comes to the evaluation of localized stresses and strains. Due to the influence of compression at a support, the shear strain distribution near the support location is not symmetric. This is confirmed by the FE method.http://dx.doi.org/10.1155/2021/6637853 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jan Niederwestberg Jianhui Zhou Ying Hei Chui Dongsheng Huang |
spellingShingle |
Jan Niederwestberg Jianhui Zhou Ying Hei Chui Dongsheng Huang Bamboo/Wood Composites and Structures Shear and Normal Strain Distributions in Multilayer Composite Laminated Panels under Out-of-Plane Bending Advances in Civil Engineering |
author_facet |
Jan Niederwestberg Jianhui Zhou Ying Hei Chui Dongsheng Huang |
author_sort |
Jan Niederwestberg |
title |
Bamboo/Wood Composites and Structures Shear and Normal Strain Distributions in Multilayer Composite Laminated Panels under Out-of-Plane Bending |
title_short |
Bamboo/Wood Composites and Structures Shear and Normal Strain Distributions in Multilayer Composite Laminated Panels under Out-of-Plane Bending |
title_full |
Bamboo/Wood Composites and Structures Shear and Normal Strain Distributions in Multilayer Composite Laminated Panels under Out-of-Plane Bending |
title_fullStr |
Bamboo/Wood Composites and Structures Shear and Normal Strain Distributions in Multilayer Composite Laminated Panels under Out-of-Plane Bending |
title_full_unstemmed |
Bamboo/Wood Composites and Structures Shear and Normal Strain Distributions in Multilayer Composite Laminated Panels under Out-of-Plane Bending |
title_sort |
bamboo/wood composites and structures shear and normal strain distributions in multilayer composite laminated panels under out-of-plane bending |
publisher |
Hindawi Limited |
series |
Advances in Civil Engineering |
issn |
1687-8086 1687-8094 |
publishDate |
2021-01-01 |
description |
Innovative mass timber panels, known as composite laminated panels (CLP), have been developed using lumber and laminated strand lumber (LSL) laminates. In this study, strain distributions of various 5-layer CLP and cross-laminated timber (CLT) were investigated by experimental and two modelling methods. Seven (7) different panel types were tested in third-point bending and short-span shear tests. During the tests, the digital imaging correlation (DIC) technique was used to measure the normal and shear strain in areas of interest. Evaluated component properties were used to determine strain distributions based on the shear analogy method and finite element (FE) modelling. The calculated theoretical strain distributions were compared with the DIC test results to evaluate the validity of strain distributions predicted by the analytical model (shear analogy) and numerical model (FE analysis). In addition, the influence of the test setup on the shear strain distribution was investigated. Results showed that the DIC strain distributions agreed well with the ones calculated by the shear analogy method and FE analysis. Both theoretical methods agree well with the test results in terms of strain distribution shape and magnitude. While the shear analogy method shows limitations when it comes to local strain close to the supports or gaps, the FE analysis reflects these strain shifts well. The findings support that the shear analogy is generally applicable for the stress and strain determination of CLP and CLT for structural design, while an FE analysis can be beneficial when it comes to the evaluation of localized stresses and strains. Due to the influence of compression at a support, the shear strain distribution near the support location is not symmetric. This is confirmed by the FE method. |
url |
http://dx.doi.org/10.1155/2021/6637853 |
work_keys_str_mv |
AT janniederwestberg bamboowoodcompositesandstructuresshearandnormalstraindistributionsinmultilayercompositelaminatedpanelsunderoutofplanebending AT jianhuizhou bamboowoodcompositesandstructuresshearandnormalstraindistributionsinmultilayercompositelaminatedpanelsunderoutofplanebending AT yingheichui bamboowoodcompositesandstructuresshearandnormalstraindistributionsinmultilayercompositelaminatedpanelsunderoutofplanebending AT dongshenghuang bamboowoodcompositesandstructuresshearandnormalstraindistributionsinmultilayercompositelaminatedpanelsunderoutofplanebending |
_version_ |
1714866883693379584 |