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DEVELOPMENT OF MULTI-DIMENSIONAL 3D PRINTED VASCULAR NETWORKS FOR SELF-HEALING MATERIALS

机译:自修复材料的多维3D打印血管网络的开发

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Self-healing materials have emerged as an alternative solution to the repair of damage in fibre-reinforced composites. Recent developments have largely focused on a vascular approach, due to the ability to transport healing agents over long distances and continually replenish from an external source. However fracture of the vascular network is required to enable the healing agents to infiltrate the crack plane, ceasing its primary function in transporting fluid and preventing the repair of any further damage events. Here we present a novel approach to vascular self-healing through the development and integration of 3D printed, porous, thermoplastic networks into a thermoset matrix. This concept exploits the inherently low surface chemistry of thermoplastic materials, which results in adhesive failure between the thermoplastic network and thermoset matrix on arrival of a propagating crack, thus exposing the radial pores of the network and allowing the healing agents to flow into the damage site. We investigate the potential of two additive manufacturing techniques, fused deposition modeling (FDM) and stereolithography, to fabricate free-standing, self-healing networks. Furthermore, we assess the interaction of a crack with branched network structures under static indentation in order to establish the feasibility of additive manufacture for multidimensional 3D printed self-healing networks.
机译:自我愈合材料作为修复纤维增强复合材料损伤的替代方案。由于能够在长距离运输愈合剂并不断从外部来源补充,最近的发展主要集中于血管方法。然而,需要血管网络的骨折以使愈合剂能够渗透裂缝平面,停止其在运输流体中的主要功能并防止任何进一步的损伤事件的修复。在这里,我们通过将3D印刷,多孔的热塑性网络的开发和集成到热固性矩阵中,提出了一种血管自愈的新方法。该概念利用热塑性材料的固有低表面化学,这导致热塑性网络和热固性矩阵之间的粘合衰竭在传播裂缝到达时,从而暴露网络的径向孔并使愈合剂流入损伤部位。我们研究了两种添加剂制造技术,融合沉积建模(FDM)和立体刻录的潜力,以制造独立式自我修复网络。此外,我们在静态压痕下评估裂缝与分支网络结构的相互作用,以便建立多维三维印刷自修复网络的添加剂制造的可行性。

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