In-situ monitoring of changes in ultrastructure and mechanical properties of flax cell walls during controlled heat treatment

被引:6
作者
Guillou, Elouan [1 ,2 ]
Dumazert, Loic [3 ]
Caer, Celia [4 ]
Beigbeder, Alexandre [1 ]
Ouagne, Pierre [5 ]
Le Saout, Gwenn [6 ]
Beaugrand, Johnny [7 ]
Bourmaud, Alain [2 ]
Le Moigne, Nicolas [3 ]
机构
[1] IPC Laval, Rue Leonard Vinci, Change, France
[2] Univ Bretagne Sud, UMR CNRS 6027, IRDL, Lorient, France
[3] IMT Mines Ales, Polymers Compos & Hybrids PCH, Ales, France
[4] IRDL, ENSTA Bretagne, UMR CNRS 6027, Brest, France
[5] Univ Toulouse, Lab Genie Prod, LGP, INP ENIT, Tarbes, France
[6] Univ Montpellier, LMGC, IMT Mines Ales, CNRS, Ales, France
[7] INRAE, UR 1268, Biopolymeres Interact Assemblages, Nantes, France
关键词
Flax fibre bundles; Temperature; X-ray diffraction; Nanoindentation; Biochemical analysis; Local mechanical properties; X-RAY-DIFFRACTION; THERMAL-DEGRADATION; TENSILE PROPERTIES; FIBER COMPOSITES; CELLULOSE; WOOD; TEMPERATURE; COMPONENTS; BEHAVIOR; POLYSACCHARIDES;
D O I
10.1016/j.carbpol.2023.121253
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Plant fibres are increasingly used as reinforcements, especially in thermoplastic composites. Understanding the impact of temperature on the properties of these fibres is an important issue for the manufacturing of highperformance materials with minimal defects. In this work, the structural evolution and mechanical behaviour of flax fibre cell walls were dynamically monitored by temperature-controlled X-ray diffraction and nanoindentation from 25 to 230 ?; detailed biochemical analysis was also conducted on fibre samples after each heating step. With increasing temperature up to 230 ?, a decrease in the local mechanical performance of the flax cell walls, of about -72 % for the indentation modulus and -35 % for the hardness, was measured. This was associated with a decrease in the packing of the cellulose crystal lattice (increase in d-spacing d(200)), as well as significant mass losses measured by thermogravimetric analysis and changes in the biochemical composition, i.e. non-cellulosic polysaccharides attributed to the middle lamellae but also to the cell walls. This work, which proposes for the first time an in-situ investigation of the dynamic temperature evolution of the flax cell wall properties, highlights the reversible behaviour of their crystalline structure (i.e. cellulose) and local mechanical properties after cooling to room temperature, even after exposure to high temperatures.
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页数:11
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