利用工业副产品的可持续三维印刷基础设施应用:综合综述

IF 2.7 Q2 CONSTRUCTION & BUILDING TECHNOLOGY Infrastructures Pub Date : 2023-10-04 DOI:10.3390/infrastructures8100140
Eka Oktavia Kurniati, Hee-Jeong Kim
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引用次数: 1

摘要

工业二次产品(如粉煤灰、高炉炉渣和硅灰)作为替代建筑材料在传统制造方法中得到广泛应用,以减少由于水泥使用而产生的碳排放并解决废物管理问题。迄今为止,增材制造或3D打印已经大规模开发用于各种材料,包括水泥基材料。在3D打印应用中,已经出现了一些将工业废料纳入水泥混合物的可能性。然而,需要对粉煤灰(FA)、磨粒高炉渣(GGBFS)和硅灰(SF)在3d打印材料中的使用进行综合研究。本文表明,3D打印的一些方面,如可打印性、可建造性和流变性需要考虑,而废料会影响这些新鲜混合物的性能。废料作为补充胶凝材料,也具有不同的力学性能和耐久性。此外,还比较了3d打印材料和传统材料的环境和经济效益。结果表明,3D打印方法可以提高环境效益和经济效益,同时保持使用传统方法制造的材料的性能。研究工业废弃物在3D打印中的应用已成为数字化时代可持续材料开发的一种有前途的途径。
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Utilizing Industrial By-Products for Sustainable Three-Dimensional-Printed Infrastructure Applications: A Comprehensive Review
Industrial secondary products (e.g., fly ash, blast furnace slag, and silica fume) have found extensive application as alternative construction materials in conventional manufacturing methods to reduce carbon emissions due to cement usage and solve the waste management problem. To date, additive manufacturing or 3D printing has been massively developed for every material, including cement-based materials. Some possibilities have arisen to incorporate industrial wastes in cement mixtures in 3D printing applications. However, a comprehensive study about fly ash (FA), ground granulated blast-furnace slag (GGBFS), and silica fume (SF) usage in 3D-printed materials needs to be conducted. This paper shows that some aspects of 3D printing, such as printability, buildability, and rheological properties, need to be considered, and waste materials affect these fresh mixture properties. Applying waste materials as supplementary cementitious materials also gives different mechanical properties and durability performances. Furthermore, the environmental and economic benefits of 3D-printed and conventional materials are compared. The results show that 3D printing methods can enhance the environmental and economic benefits while maintaining the performance of materials created using traditional methods. Studying industrial waste application in 3D printing has become a promising way to develop sustainable materials in this digitalization era.
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来源期刊
Infrastructures
Infrastructures Engineering-Building and Construction
CiteScore
5.20
自引率
7.70%
发文量
145
审稿时长
11 weeks
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