M. Rashid, J. L. Hanus, K. Chetehouna, K. Khellil, Z. Aboura, N. Gascoin
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Although tufting is a single needle and single thread based one side stitching (OSS) technique which can incorporate almost tension free through the thickness reinforcement in a material, various types of microstructural defects may be created during the manufacturing process and lead to a degradation of the in-plane properties of the composite. Moreover, due to awareness in environmental concerns, the development and use of eco-friendly biocomposites to replace synthetic ones has been increasing.</p><p>This research work investigates the effect on in plane mechanical properties of adding through the thickness reinforcement (TTR) by tufting in a flax based composite laminate to improve the transversal strength. The glass fibre tufted laminates of 550?g/m<sup>2</sup> flax fibre were moulded using a 38% biobased thermoset resin by vacuum bag resin transfer moulding (VBRTM). The tufted and un-tufted in-plane mechanical properties of green biocomposite were determined in tension, compression and shear in accordance with ASTM 3039, ASTM D7137 and EN ISO 14130, using universal INSTRON 1186 and MTS 20?M testing machines. The quantification of the in-plane mechanical properties established a reduction of the in plane tensile mechanical properties, due to tufting, whereas the reduction effects are marginal in compression. As expected, the glass fibre tufts strength the connection between core and skin of the composite so that the interlaminar shear strength, deduced from flexural tests with small span-to-thickness ratio, is increased. Thanks to Digital Image Correlation (DIC) performed during shear tests, an increase in interlaminar shear modulus is highlighted.</p>","PeriodicalId":576,"journal":{"name":"Functional Composite Materials","volume":"2 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2021-04-08","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"6","resultStr":"{\"title\":\"Investigation of the effect of tufts contribution on the in-plane mechanical properties of flax fibre reinforced green biocomposite\",\"authors\":\"M. Rashid, J. L. Hanus, K. Chetehouna, K. Khellil, Z. Aboura, N. Gascoin\",\"doi\":\"10.1186/s42252-021-00019-z\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>Traditional laminated composites have fibres oriented only in the in-plane of the laminate due to their manufacturing process, and are therefore very susceptible to transverse cracking and delamination from out-of-plane actions. Delamination can considerably reduce the load bearing capacity of a structure hence several reinforcement solutions, based on the principle to add out-of-plane reinforcement to the 2D fabric, have been explored to enhance the delamination resistance. However, the usual textile technologies for Z-reinforcement such as weaving, knitting, stitching, z-pinning, and tufting generates perturbations that may alter the in-plane mechanical properties. Although tufting is a single needle and single thread based one side stitching (OSS) technique which can incorporate almost tension free through the thickness reinforcement in a material, various types of microstructural defects may be created during the manufacturing process and lead to a degradation of the in-plane properties of the composite. 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As expected, the glass fibre tufts strength the connection between core and skin of the composite so that the interlaminar shear strength, deduced from flexural tests with small span-to-thickness ratio, is increased. 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引用次数: 6
摘要
由于传统的层压复合材料的制造工艺,其纤维仅在层压板的平面内取向,因此非常容易受到平面外作用的横向开裂和分层。分层会大大降低结构的承载能力,因此,基于在二维织物中添加面外加固的原理,探索了几种增强方案来增强结构的抗分层能力。然而,通常用于z型增强的纺织技术,如编织、针织、缝合、z型钉钉和簇绒,会产生可能改变面内机械性能的扰动。虽然簇绒是一种基于单针和单线的单侧缝合(OSS)技术,可以通过材料中的厚度增强几乎不受张力,但在制造过程中可能会产生各种类型的微结构缺陷,并导致复合材料的平面内性能退化。此外,由于对环境问题的认识,开发和使用生态友好型生物复合材料来取代合成材料已经越来越多。本文研究了在亚麻基复合材料层合板中加入厚度增强剂(TTR)以提高横向强度对其平面力学性能的影响。玻璃纤维簇绒层压板550?g/m2亚麻纤维采用38%生物基热固性树脂真空袋树脂转移模塑(VBRTM)成型。按照ASTM 3039、ASTM D7137和EN ISO 14130,使用通用的INSTRON 1186和MTS 20?M台试验机。平面内力学性能的量化确定了由于簇绒而导致的平面内拉伸力学性能的降低,而压缩时的降低效应是边际的。正如预期的那样,玻璃纤维簇增强了复合材料芯层和表层之间的连接,从而提高了从小跨厚比弯曲试验中得出的层间抗剪强度。由于在剪切测试期间进行了数字图像相关(DIC),层间剪切模量的增加被突出显示。
Investigation of the effect of tufts contribution on the in-plane mechanical properties of flax fibre reinforced green biocomposite
Traditional laminated composites have fibres oriented only in the in-plane of the laminate due to their manufacturing process, and are therefore very susceptible to transverse cracking and delamination from out-of-plane actions. Delamination can considerably reduce the load bearing capacity of a structure hence several reinforcement solutions, based on the principle to add out-of-plane reinforcement to the 2D fabric, have been explored to enhance the delamination resistance. However, the usual textile technologies for Z-reinforcement such as weaving, knitting, stitching, z-pinning, and tufting generates perturbations that may alter the in-plane mechanical properties. Although tufting is a single needle and single thread based one side stitching (OSS) technique which can incorporate almost tension free through the thickness reinforcement in a material, various types of microstructural defects may be created during the manufacturing process and lead to a degradation of the in-plane properties of the composite. Moreover, due to awareness in environmental concerns, the development and use of eco-friendly biocomposites to replace synthetic ones has been increasing.
This research work investigates the effect on in plane mechanical properties of adding through the thickness reinforcement (TTR) by tufting in a flax based composite laminate to improve the transversal strength. The glass fibre tufted laminates of 550?g/m2 flax fibre were moulded using a 38% biobased thermoset resin by vacuum bag resin transfer moulding (VBRTM). The tufted and un-tufted in-plane mechanical properties of green biocomposite were determined in tension, compression and shear in accordance with ASTM 3039, ASTM D7137 and EN ISO 14130, using universal INSTRON 1186 and MTS 20?M testing machines. The quantification of the in-plane mechanical properties established a reduction of the in plane tensile mechanical properties, due to tufting, whereas the reduction effects are marginal in compression. As expected, the glass fibre tufts strength the connection between core and skin of the composite so that the interlaminar shear strength, deduced from flexural tests with small span-to-thickness ratio, is increased. Thanks to Digital Image Correlation (DIC) performed during shear tests, an increase in interlaminar shear modulus is highlighted.