冻胀
岩土工程
路基
土壤水分
霜冻(温度)
水分
环境科学
含水量
霜冻风化
相变
渗透(战争)
阿太堡极限
限制
雪
渗透试验
压实
土壤稳定
材料科学
潜热
车辙
湿度
结算(财务)
地面冻结
渗透(HVAC)
孔隙水压力
地质学
积水
永久冻土
土工试验
堤防
土壤科学
作者
Berkay Azakli,Mohammad Wasif Naqvi,Mehdi Bulduk,Bora Çetin,Kristen S. Cetin
出处
期刊:Journal of Geotechnical and Geoenvironmental Engineering
[American Society of Civil Engineers]
日期:2026-06-18
卷期号:152 (9)
标识
DOI:10.1061/jggefk.gteng-14908
摘要
Freeze–thaw (F-T) cycles cause substantial deterioration in pavement systems due to frost heaving and thaw settlement in cold regions. This study investigates using phase change materials (PCMs) to mitigate F-T-induced damage in frost-susceptible subgrade soils. PCMs store and release latent heat during phase transitions, reducing temperature fluctuations near freezing and limiting ice lens formation. Three PCM types were initially screened based on thermal behavior and compatibility with two soil types: glacial till (GT) and sandy soil (SS). These were (1) an inorganic salt-hydrate solution (PCM-A), (2) a liquid organic PCM (PCM-B), and (3) a powdered form of PCM-B (pPCM-B). PCM-B was selected for further evaluation. Resilient modulus (MR) and frost heave–thaw settlement tests assessed its performance under repeated F-T cycling. Results showed that 10% PCM-B reduced frost penetration and frost heave by 50% and 85%, respectively. During testing, PCM-treated specimens maintained 10% moisture content, while controls reached 35%, indicating reduced water intake. PCM-B-treated soils preserved MR values after 0, 2, and 5 F-T cycles, showing no mechanical degradation. Improvements were attributed to PCM-B’s thermoregulation and influence on permeability, which together limit moisture migration and ice lens formation. These findings demonstrate PCM-B’s potential to enhance F-T resistance in subgrade soils without compromising mechanical stability.
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