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Development of 3D Printed Networks in Self-Healing Concrete

机译:自修复混凝土中3D打印网络的开发

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摘要

This paper presents a new form of biomimetic cementitious material, which employs 3D-printed tetrahedral mini-vascular networks (MVNs) to store and deliver healing agents to damage sites within cementitious matrices. The MVNs are required to not only protect the healing agent for a sufficient period of time but also survive the mixing process, release the healing agent when the cementitious matrix is damaged, and have minimal impact on the physical and mechanical properties of the host cementitious matrix. A systematic study is described which fulfilled these design requirements and determined the most appropriate form and material for the MVNs. A subsequent series of experiments showed that MVNs filled with sodium silicate, embedded in concrete specimens, are able to respond effectively to damage, behave as a perfusable vascular system and thus act as healing agent reservoirs that are available for multiple damage-healing events. It was also proved that healing agents encapsulated within these MVNs can be transported to cracked zones in concrete elements under capillary driving action, and produce a recovery of strength, stiffness and fracture energy.
机译:本文介绍了一种新型的仿生胶结材料,该材料采用3D打印的四面体微血管网络(MVN)来存储和输送愈合剂至胶结基质内的损伤部位。 MVN不仅需要在足够长的时间内保护愈合剂,还需要在混合过程中存活下来,当水泥基破坏时释放固化剂,并且对主体水泥基的物理和机械性能影响最小。描述了满足这些设计要求并确定了MVN最合适的形式和材料的系统研究。随后的一系列实验表明,充满硅酸钠的MVN嵌入混凝土标本中,能够对损伤做出有效的反应,表现为可灌注的血管系统,因此可作为可用于多种损伤修复事件的治疗剂容器。还证明了封装在这些MVN中的愈合剂可以在毛细管驱动作用下被输送到混凝土构件中的裂缝区域,并产生强度,刚度和断裂能的恢复。

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