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高温环境下的生态混凝土

Eco-Concrete in High Temperatures.

作者信息

Sundin Marcin, Hedlund Hans, Cwirzen Andrzej

机构信息

Building Material Department of Civil, Environmental and Natural Resources Engineering, 97187 Lulea, Sweden.

出版信息

Materials (Basel). 2023 Jun 6;16(12):4212. doi: 10.3390/ma16124212.

Abstract

Concrete technology is becoming more and more sustainable and ecological following more extensive and focused research. The usage of industrial waste and by-products, such as steel ground granulated blast-furnace slag (GGBFS), mine tailing, fly ash, and recycled fibers, is a very important step toward a good transition of concrete into a "green" future and significant improvement in waste management in the world. However, there are also several known durability-related problems with some types of eco-concretes, including exposure to fire. The general mechanism occurring in fire and high-temperature scenarios is broadly known. There are many variables that weightily influence the performance of this material. This literature review has gathered information and results regarding more sustainable and fire-resistant binders, fire-resistant aggregates, and testing methods. Mixes that utilize industrial waste as a total or partial cement replacement have been consistently achieving favorable and frequently superior outcomes when compared to conventional ordinary Portland cement (OPC)-based mixes, especially at a temperature exposure up to 400 °C. However, the primary emphasis is placed on examining the impact of the matrix components, with less attention given to other factors such as sample treatment during and following exposure to high temperatures. Furthermore, there is a shortage of established standards that could be utilized in small-scale testing.

摘要

随着更广泛、更有针对性的研究,混凝土技术正变得越来越可持续和生态化。使用工业废料和副产品,如钢渣粉(GGBFS)、尾矿、粉煤灰和再生纤维,是混凝土向“绿色”未来良好转型以及世界范围内废物管理显著改善的非常重要的一步。然而,某些类型的生态混凝土也存在一些与耐久性相关的已知问题,包括火灾暴露。火灾和高温场景中发生的一般机制广为人知。有许多变量会严重影响这种材料的性能。这篇文献综述收集了有关更可持续和耐火的胶凝材料、耐火骨料及测试方法的信息和结果。与传统的普通硅酸盐水泥(OPC)基混合料相比,将工业废料作为全部或部分水泥替代品的混合料一直都能取得良好且往往更优异的结果,尤其是在高达400°C的温度暴露下。然而,主要重点放在研究基体成分的影响上,而对高温暴露期间及之后的其他因素,如样品处理等关注较少。此外,缺乏可用于小规模测试的既定标准。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/76dd/10305228/e69d92c70e8b/materials-16-04212-g001.jpg

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