Magnetic Alignment of Microsteel Fibers as Strategy for Reinforcing UHPFRC

Lukas Ledderose, Abtin Baghdadi, H. Kloft
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Abstract

The objective of this paper is to provide an insight into current basic research at ITE on the manufacturing process of resource-efficient components through the controlled, automated magnetic distribution and alignment of steel fibers in UHPFRC (Ultra-High Performance Fibre-Reinforced Concrete). The method for distributing and aligning steel fibers in UHPFRC is based on the physical phenomenon of magnetism. Since steel fibers are ferromagnetic, magnetic fields can selectively change their position in the fresh concrete and align them according to the force flow and the maxim "form follows force". The magnetic fiber alignment (MFA) process developed on this principle combines the capabilities of digital and automized component manufacturing with the potential of targeted fiber alignment to increase the material efficiency of UHPFRC. It is highlighted at four levels: UHPFRC At the material level, studies were conducted on the composite properties of different brand-new and recycled microsteel fibers (MSF), formwork designs suitable for the MFA process were developed, flux densities of different magnets were simulated with special software solutions and measured in practice, and an end effector was fabricated that was implemented on 3- and 6-axis kinematics. At the process level, the interaction of the main parameters of the MFA process was evaluated by visual analysis on transparent glucose syrup-based solutions, and series of specimens were analyzed by micro-CT scans. At the component level, centric tensile tests were performed on a wide variation of dog-bones to provide an assessment of the potential increase in tensile performance of UHPFRC by the MFA process. At an economic and environmental evaluation level, the results from the tensile tests were used to assess and quantify the potential savings from reducing the fiber content and using recycled steel fibers.
微钢纤维的磁定向增强UHPFRC策略
本文的目的是通过UHPFRC(超高性能纤维增强混凝土)中钢纤维的受控、自动磁分布和对齐,为ITE目前在资源高效组件制造过程中的基础研究提供见解。钢纤维在UHPFRC中的分布和对准方法是基于磁性物理现象。由于钢纤维是铁磁性的,磁场可以选择性地改变钢纤维在新混凝土中的位置,并根据力的流向和“形随力”的原则对钢纤维进行排列。基于这一原理开发的磁性光纤对准(MFA)工艺将数字化和自动化组件制造的能力与目标光纤对准的潜力相结合,以提高UHPFRC的材料效率。在材料层面,研究了不同全新和再生微钢纤维(MSF)的复合性能,开发了适合MFA工艺的模板设计,用专用软件模拟了不同磁体的磁通密度并在实践中进行了测量,并制作了一个在3轴和6轴运动上实现的末端执行器。在工艺层面,通过对透明葡萄糖糖浆溶液的视觉分析来评价MFA工艺主要参数的相互作用,并通过微ct扫描对一系列样品进行分析。在部件水平上,对各种各样的狗骨进行了中心拉伸试验,以评估MFA工艺对UHPFRC拉伸性能的潜在增加。在经济和环境评价层面,拉伸试验的结果用于评估和量化减少纤维含量和使用回收钢纤维的潜在节约。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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