Saved in:
Bibliographic Details
Main Authors: Wu, Yuan, Casari, Pascal, Fajoui, Jamal, Fréour, Sylvain, Bouziane, Mouna
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2511.02412
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866912687443673088
author Wu, Yuan
Casari, Pascal
Fajoui, Jamal
Fréour, Sylvain
Bouziane, Mouna
author_facet Wu, Yuan
Casari, Pascal
Fajoui, Jamal
Fréour, Sylvain
Bouziane, Mouna
contents The objective of developing bio-based composite sandwich structures with greener core materials is to facilitate the decarbonization of industries such as aviation and maritime. This field of research has received increasing attention over the past decades. For example, balsa wood has emerged as a highly promising alternative to foam or honeycomb cores, offering a lightweight, rapidly renewable and cost-effective solution. However, plant fibers such as balsa wood and flax often display high hydrophilic behavior, which could affect their mechanical performance and long-term durability. It is therefore imperative to promote further research into the characterization of the cyclic hygrothermal aging behavior of balsa wood core sandwich structures, in particular the identification of moistureinduced strains and internal stresses in the skins and cores, as well as the investigation of moisture desorption processes and the associated thermal shrinkage phenomena in wood fibers, resins and glass fibers. Accordingly, this work employs two complete moisture absorption-desorption cycles to characterize the moisture diffusion behavior of specimens comprising three different materials, including the pure balsa wood, resin-infused balsa and balsa core sandwich structures with two Glass-Fiber-Reinforced-Polymer (GFRP) skins. The changes in moisture content and hygroscopic strains in the thickness, length and width directions of all specimens were investigated with a view to identifying the hygroscopic swelling and thermal shrinkage behaviors exhibited during long-term aging cycles.
format Preprint
id arxiv_https___arxiv_org_abs_2511_02412
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Characterization Of Cyclic Hygrothermal Swelling And Shrinkage Behavior Of Balsa Wood And Gfrp-Balsa Sandwich Structures
Wu, Yuan
Casari, Pascal
Fajoui, Jamal
Fréour, Sylvain
Bouziane, Mouna
Classical Physics
The objective of developing bio-based composite sandwich structures with greener core materials is to facilitate the decarbonization of industries such as aviation and maritime. This field of research has received increasing attention over the past decades. For example, balsa wood has emerged as a highly promising alternative to foam or honeycomb cores, offering a lightweight, rapidly renewable and cost-effective solution. However, plant fibers such as balsa wood and flax often display high hydrophilic behavior, which could affect their mechanical performance and long-term durability. It is therefore imperative to promote further research into the characterization of the cyclic hygrothermal aging behavior of balsa wood core sandwich structures, in particular the identification of moistureinduced strains and internal stresses in the skins and cores, as well as the investigation of moisture desorption processes and the associated thermal shrinkage phenomena in wood fibers, resins and glass fibers. Accordingly, this work employs two complete moisture absorption-desorption cycles to characterize the moisture diffusion behavior of specimens comprising three different materials, including the pure balsa wood, resin-infused balsa and balsa core sandwich structures with two Glass-Fiber-Reinforced-Polymer (GFRP) skins. The changes in moisture content and hygroscopic strains in the thickness, length and width directions of all specimens were investigated with a view to identifying the hygroscopic swelling and thermal shrinkage behaviors exhibited during long-term aging cycles.
title Characterization Of Cyclic Hygrothermal Swelling And Shrinkage Behavior Of Balsa Wood And Gfrp-Balsa Sandwich Structures
topic Classical Physics
url https://arxiv.org/abs/2511.02412