IF 6.6 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
npj Materials Degradation Pub Date : 2025-01-01 Epub Date: 2025-03-17 DOI:10.1038/s41529-025-00571-0
C L Thorpe, A J Fisher, G Manifold, S Creasey-Gray, C M Jackson, B Stone, C L Corkhill, C Boothman, J R Lloyd, R J Hand
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引用次数: 0

摘要

Ballidon实验是进行时间最长的玻璃耐久性研究之一,在实验中,现代和模拟考古玻璃被埋在轻度碱性、不饱和的条件下52年。对玻璃表面进行了分析,以确定蚀变的程度和机理。蚀变层化学反应复杂,包括来自周围灰岩沉积物的Ca和来自孔隙水的P,导致富Ca、Pb和Fe-phosphate相穿插富Si和富Al区。有证据表明,由于流体的持续进入,蚀变层结构正在不断演化。富含硅的地区的片层大约标明了埋埋的年代,并表明它们的形成与季节性气候循环之间可能存在联系。现场样品与实验室溶解测试的比较突出了表面光洁度对初始蚀变率的影响,以及使用蚀变层厚度来估计溶解玻璃量的局限性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Insights into long term glass corrosion mechanisms from the Ballidon experiment.

At the Ballidon experiment, one of the longest running glass durability studies, modern and simulant archaeological glasses were buried in mildly alkaline, under-saturated, conditions for 52 years. Glass surfaces were analysed to determine the extent and mechanisms of alteration. Alteration layer chemistry was complex and included Ca from the surrounding limestone sediment and P from porewater resulting in Ca, Pb and Fe-phosphate rich phases interspersed with Si and Al rich regions. There was evidence for ongoing evolution of the alteration layer structure due to continued fluid ingress. Lamellae in the silica-rich regions approximately numbering the years of burial and indicating a possible link between their formation and seasonal climate cycling. Comparison of field samples with laboratory dissolution tests highlighted the impact of surface finish on initial alteration rate and the limitations of using alteration layer thickness to estimate the amount of glass that has dissolved.

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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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