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近零能耗建筑外立面构件的先进碳增强混凝土技术

Advanced Carbon Reinforced Concrete Technologies for Façade Elements of Nearly Zero-Energy Buildings.

作者信息

Kraft Robert, Kahnt Alexander, Grauer Otto, Thieme Mike, Wolz Daniel Sebastian, Schlüter Dominik, Tietze Matthias, Curbach Manfred, Holschemacher Klaus, Jäger Hubert, Böhm Robert

机构信息

Faculty of Civil Engineering, Structural Concrete Institute, Leipzig University of Applied Sciences, PF 30 11 66, 04251 Leipzig, Germany.

Faculty of Engineering, Leipzig University of Applied Sciences, PF 30 11 66, 04251 Leipzig, Germany.

出版信息

Materials (Basel). 2022 Feb 21;15(4):1619. doi: 10.3390/ma15041619.

Abstract

The building sector accounts for approx. 40% of total energy consumption and approx. 36% of all greenhouse gas emissions in Europe. As the EU climate targets for 2030 call for a reduction of greenhouse gas emissions by more than half compared to the emissions of 1990 and also aim for climate neutrality by 2050, there is an urgent need to achieve a significant decrease in the energy use in buildings towards Nearly Zero-Energy Buildings (nZEBs). As the energy footprint of buildings includes the energy and greenhouse gas consumption both in the construction phase and during service life, nZEB solutions have to provide energy-efficient and less carbon-intensive building materials, specific thermal insulation solutions, and a corresponding design of the nZEB. Carbon reinforced concrete (CRC) materials have proven to be excellent candidate materials for concrete-based nZEBs since they are characterized by a significantly lower CO consumption during component production and much a longer lifecycle. The corresponding CRC technology has been successively implemented in the last two decades and first pure CRC-based buildings are currently being built. This article presents a novel material system that combines CRC technology and suitable multifunctional insulation materials as a sandwich system in order to meet future nZEB requirements. Because of its importance for the life cycle stage of production, cost-efficient carbon fibers (CF) from renewable resources like lignin are used as reinforcing material, and reinforcement systems based on such CF are developed. Cutting edge approaches to produce ultra-thin lightweight CF reinforced concrete panels are discussed with regard to their nZEB relevance. For the life cycle stage of the utilization phase, the thermal insulation properties of core materials are optimized. In this context, novel sandwich composites with thin CRC layers and a cellular lightweight concrete core are proposed as a promising solution for façade elements as the sandwich core can additionally be combined with an aerogel-based insulation. The concepts to realize such sandwich façade elements will be described here along with a fully automated manufacturing process to produce such structures. The findings of this study provide clear evidence on the promising capabilities of the CRC technology for nZEBs on the one hand and on the necessity for further research on optimizing the energy footprint of CRC-based structural elements on the other hand.

摘要

在欧洲,建筑行业约占总能源消耗的40%,约占所有温室气体排放的36%。由于欧盟2030年的气候目标要求与1990年的排放量相比,将温室气体排放量减少一半以上,并力争到2050年实现气候中和,因此迫切需要大幅降低建筑能耗,实现近零能耗建筑(nZEB)。由于建筑的能源足迹包括施工阶段和使用寿命期间的能源消耗和温室气体排放,nZEB解决方案必须提供节能且碳密集度较低的建筑材料、特定的隔热解决方案以及相应的nZEB设计。碳增强混凝土(CRC)材料已被证明是基于混凝土的nZEB的理想候选材料,因为它们在构件生产过程中的二氧化碳消耗量显著降低,且生命周期更长。相应的CRC技术在过去二十年中已相继实施,目前正在建造首批纯CRC建筑。本文提出了一种新颖的材料系统,该系统将CRC技术与合适的多功能隔热材料结合成夹心系统,以满足未来nZEB的要求。由于其对生产生命周期阶段的重要性,使用来自木质素等可再生资源的具有成本效益的碳纤维(CF)作为增强材料,并开发基于此类CF的增强系统。讨论了生产超薄轻质CF增强混凝土板的前沿方法及其与nZEB的相关性。对于使用阶段的生命周期阶段,优化了芯材的隔热性能。在此背景下,提出了具有薄CRC层和多孔轻质混凝土芯的新型夹心复合材料,作为外墙构件的一种有前景的解决方案,因为夹心芯可以额外与气凝胶基隔热材料结合使用。这里将描述实现这种夹心外墙构件的概念以及生产此类结构的全自动制造工艺。这项研究的结果一方面清楚地证明了CRC技术对nZEB的潜力,另一方面也证明了进一步研究优化基于CRC的结构构件能源足迹的必要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b122/8878493/12da55bfd0e7/materials-15-01619-g002.jpg

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