Biochar as a bio-renewable addition to enhance carbonation of reactive MgO cement based composites

IF 3.4 3区 工程技术 Q2 CONSTRUCTION & BUILDING TECHNOLOGY
Tolga Tamer, Hossein Mazaheri, Duygu Ergenç, Çağla Meral Akgül
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Abstract

Reactive magnesium oxide cement (RMC) is emerging as a sustainable binder in construction applications due to its ability to sequester CO2 through carbonation, forming stable carbonates. However, the efficiency of RMC carbonation relies heavily on maintaining sufficient humidity and CO2 concentration during curing. Various additives—including hydration agents, carbonate species, and seeds—have demonstrated effectiveness in enhancing both hydration and carbonation of RMC, thereby improving its mechanical performance. This study explores the use of biochar—a highly porous, carbon-based by-product of biomass pyrolysis—as a sustainable and cost-effective carbonation aid by evaluating its impact on the physical, rheological, mechanical, and microstructural properties of RMC composites. The results showed that the incorporation of 2 wt% biochar significantly improved early-age mechanical performance, with compressive strength increasing from 37.8 to 45.8 MPa at 7-days under CO2 curing, and promoted the formation of hydrated magnesium carbonates (HMCs), raising total HMCs content from 5.4 to 13.9 wt% at 7-days under CO2 curing. This improvement is attributed to biochar’s micro-filler effect, internal curing capability and its ability to facilitate CO2 diffusion. Moreover, the inclusion of biochar effectively shortened the curing time, further enhancing the sustainability of CO2 curing by reducing energy consumption. In conclusion, this study highlights the potential of biochar as a bio-renewable additive in RMC-based composites, enhancing brucite and HMCs formation, shortening CO2-curing time and contributing to development of sustainable, carbon-efficient construction materials.

生物炭作为一种生物可再生添加剂,可增强活性MgO水泥基复合材料的碳化作用
活性氧化镁水泥(RMC)由于能够通过碳化作用隔离二氧化碳,形成稳定的碳酸盐,正在成为建筑应用中的可持续粘合剂。然而,RMC碳化的效率在很大程度上依赖于在固化过程中保持足够的湿度和CO2浓度。各种添加剂——包括水化剂、碳酸盐物种和种子——已经证明了增强RMC水化和碳化的有效性,从而改善其机械性能。本研究通过评估生物炭对RMC复合材料的物理、流变、机械和微观结构性能的影响,探索了生物炭作为一种可持续的、具有成本效益的碳化助剂的使用。结果表明:掺入2 wt%的生物炭显著改善了早期力学性能,CO2养护7 d时抗压强度从37.8 MPa提高到45.8 MPa,促进了水合碳酸镁(hmc)的形成,使总hmc含量从5.4 wt%提高到13.9 wt%。这种改善归功于生物炭的微填料效应、内部固化能力和促进二氧化碳扩散的能力。此外,生物炭的掺入有效缩短了固化时间,通过降低能耗进一步增强CO2固化的可持续性。总之,本研究强调了生物炭作为rmc基复合材料中生物可再生添加剂的潜力,它可以促进水镁石和hmc的形成,缩短二氧化碳固化时间,并有助于开发可持续的、碳高效的建筑材料。
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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来源期刊
Materials and Structures
Materials and Structures 工程技术-材料科学:综合
CiteScore
6.40
自引率
7.90%
发文量
222
审稿时长
5.9 months
期刊介绍: Materials and Structures, the flagship publication of the International Union of Laboratories and Experts in Construction Materials, Systems and Structures (RILEM), provides a unique international and interdisciplinary forum for new research findings on the performance of construction materials. A leader in cutting-edge research, the journal is dedicated to the publication of high quality papers examining the fundamental properties of building materials, their characterization and processing techniques, modeling, standardization of test methods, and the application of research results in building and civil engineering. Materials and Structures also publishes comprehensive reports prepared by the RILEM’s technical committees.
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