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Robotic spray coating of self-sensing metakaolin geopolymer for concrete monitoring

机译:用于混凝土监测的自感应Metakaolin Geo聚物的机器人喷涂涂层

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摘要

Sensors and new materials can support optimised concrete maintenance, and produce the data needed to justify new, low carbon structural designs. While these technologies are affordable, the process of manual installation in a construction context comes with acute and unfamiliar risks to productivity, personnel safety, and confidence in the quality of workmanship. The installation of smart materials using robotics could address some of these issues, but there are few proofs-of-concept at the time of writing. Here, we present a robotically controlled process for spray coating geopolymers - a class of self-sensing concrete repair materials. By tuning mix design, robotic toolpaths and spray dispenser parameters, we show reliable and automated spray coating of 250 mm(2) patches in a laboratory setting. The cured geopolymer has a compressive strength of 20 MPa, and a bond strength to the concrete substrate of 0.5 MPa. Electrical interrogation of patches, via a set of four electrodes, produces strain and temperature measurements of the underlying concrete substrate with resolutions of 1 mu epsilon and 0.2 degrees C, respectively. This demonstration multifunctional material deposition using robotics is a step towards remote, traceable, and low-risk technology deployment across civil engineering sectors. This could support more widespread adoption of novel concrete health monitoring and repair systems in future.
机译:传感器和新材料可以支持优化的混凝土维护,并产生证明新的低碳结构设计所需的数据。虽然这些技术实惠,但施工背景下的手动安装过程具有急性和不熟悉的生产力,人员安全性和在工艺质量方面的信心。使用机器人学的智能材料的安装可以解决这些问题中的一些问题,但在撰写本文时似乎很少有概念。在这里,我们为喷涂地质聚合物提供了一种机器人控制的方法 - 一类自感应混凝土修复材料。通过调整混合设计,机器人刀具路径和喷涂分配器参数,我们在实验室设置中显示了250 mm(2)个贴片的可靠和自动喷涂。固化的地质聚合物具有20MPa的压缩强度,以及与0.5MPa的混凝土基板的键合强度。通过一组四个电极的贴片电气询问,可以分别产生1μmε和0.2℃的分辨率的下面的混凝土基板的应变和温度测量。该演示使用机器人的多功能材料沉积是跨越土木工程领域遥远,可追溯和低风险技术部署的一步。这可以支持将来更广泛地采用新型混凝土健康监测和修复系统。

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