RAAC面板可能在任何腐蚀引起的表面开裂警告之前突然倒塌。

IF 6.6 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
npj Materials Degradation Pub Date : 2025-01-01 Epub Date: 2025-05-07 DOI:10.1038/s41529-025-00596-5
Evžen Korec, Peter Grassl, Milan Jirásek, Hong S Wong, Emilio Martínez-Pañeda
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引用次数: 0

摘要

钢筋蒸压加气混凝土(RAAC)面板的倒塌引起了公众和学术界的广泛关注。由于没有详细的实验数据,并且复制自然腐蚀过程需要数年或数十年,因此计算模型对于了解在哪些条件下腐蚀仍然隐藏至关重要。RAAC的高孔隙度被广泛认为是主要的影响因素。然而,目前的腐蚀诱导开裂模型很难捕捉混凝土孔隙率的作用。为了弥补这一关键缺陷,我们建议用控制锈沉淀的反应输运方程的解析解和孔隙率相关的扩散率描述来丰富腐蚀诱导裂纹模型。因此,首次对RAAC面板的腐蚀隐蔽性进行了计算研究,揭示了RAAC面板可能在任何腐蚀引起的表面开裂警告之前突然倒塌,并允许绘制最可能导致突然倒塌的条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
RAAC panels can suddenly collapse before any warning of corrosion-induced surface cracking.

The collapse of reinforced autoclaved aerated concrete (RAAC) panels has attracted considerable public and academic interest. As detailed experimental data are not yet available and replicating the natural corrosion process requires years or decades, computational modelling is essential to understand under which conditions corrosion remains concealed. The very high porosity of RAAC is widely suspected to be a major contributing factor. However, current corrosion-induced cracking models are known to struggle with capturing the role of concrete porosity. To remedy this critical deficiency, we propose to enrich corrosion-induced cracking modelling with the analytical solution of reactive transport equations governing the precipitation of rust and a porosity-dependent description of diffusivity. With this, the corrosion concealment in RAAC panels is studied computationally for the first time, revealing that RAAC panels can suddenly collapse before any warning of corrosion-induced surface cracking and allowing to map the conditions most likely to result in sudden collapse.

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来源期刊
npj Materials Degradation
npj Materials Degradation MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
7.80
自引率
7.80%
发文量
86
审稿时长
6 weeks
期刊介绍: npj Materials Degradation considers basic and applied research that explores all aspects of the degradation of metallic and non-metallic materials. The journal broadly defines ‘materials degradation’ as a reduction in the ability of a material to perform its task in-service as a result of environmental exposure. The journal covers a broad range of topics including but not limited to: -Degradation of metals, glasses, minerals, polymers, ceramics, cements and composites in natural and engineered environments, as a result of various stimuli -Computational and experimental studies of degradation mechanisms and kinetics -Characterization of degradation by traditional and emerging techniques -New approaches and technologies for enhancing resistance to degradation -Inspection and monitoring techniques for materials in-service, such as sensing technologies
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