Please use this identifier to cite or link to this item: https://dspace.ctu.edu.vn/jspui/handle/123456789/5117
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dc.contributor.authorVõ, Hồng Nhân-
dc.contributor.authorPuttemans, Frederick-
dc.contributor.authorTrujillo, Eduardo-
dc.contributor.authorVuure, Aart Willem Van-
dc.contributor.authorGoderis, Bart-
dc.contributor.authorVerpoest, Ignaas-
dc.contributor.authorJansens, Koen J.A.-
dc.contributor.authorPuyvelde, Peter Van-
dc.date.accessioned2018-11-21T07:41:23Z-
dc.date.available2018-11-21T07:41:23Z-
dc.date.issued2016-
dc.identifier.urihttp://localhost:8080//jspui/handle/123456789/5117-
dc.description.abstractWe aim to produce unidirectional fiber composites with high mechanical performance based on flax fibers and a rigid gliadin matrix. As a fraction from wheat gluten, gliadin is soluble in alcohol containing media. The fabrication process did not involve any further solvents or plasticizers. Finally, samples were cooled at different rates. Overall, the cooling rate does not strongly affect the mechanical properties although slowly cooled materials contain a higher amount of non-disulfide cross-links, next to disulfide bonds within the gliadin matrix. At 40% fiber volume fraction, flax/gliadin composites with a flexural modulus and strength of respectively 21.5 GPa and 240 MPa were obtained when loaded in the longitudinal direction. These high values demonstrate that in this composite fabrication process, a good impregnation of the polymer matrix in between the fiber bundles has been achieved. However, the fiber–matrix adhesion, as measured by transverse flexural and tensile tests, was still relatively modest.vi_VN
dc.language.isoenvi_VN
dc.relation.ispartofseriesComposites Part A: Applied Science and Manufacturing;85 .- p.76-83-
dc.subjectA.Polymer-matrix composites (PMCs)vi_VN
dc.subjectA.Gliadinvi_VN
dc.subjectB.Mechanical propertiesvi_VN
dc.subjectE.Powder processingvi_VN
dc.titleDeveloping rigid gliadin based biocomposites with high mechanical performancevi_VN
dc.typeArticlevi_VN
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