Experimental study on the influence of different admixtures on the disintegration characteristics of fluid-consolidated soil
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摘要: 黄土因其特殊的物理化学性质,在冻融循环的自然环境作用下,易发生崩解,进而影响工程建设的安全与耐久性。针对此问题,选取了水泥、生石灰、粉煤灰、聚丙烯纤维及仿钢纤维等5种不同的材料制备流态固化土,通过室内模拟冻融循环试验,分析在不同材料、不同冻融循环次数下的崩解特性,评估改良效果。研究结果表明:水泥、生石灰和水泥−仿钢纤维改良效果较好,崩解率、崩解速率均有不同幅度的下降;仅在未冻融情况下,粉煤灰和聚丙烯纤维对崩解速率有减缓作用;水泥−仿钢纤维复合材料改良效果优于单一材料(水泥);冻融循环对土体崩解有促进作用。Abstract: Due to its special physical and chemical properties, loess is prone to disintegration under natural conditions of freeze-thaw cycles, which in turn affects the safety and durability of engineering construction. To address this issue, five different materials—cement, quicklime, fly ash, polypropylene fiber, and steel fiber-reinforced polymer—were selected to prepare fluidized solidified soil. Through indoor simulated freeze-thaw cycle experiments, the disintegration characteristics under different materials and different numbers of freeze-thaw cycles were analyzed to evaluate the improvement effects, leading to the following conclusions: Cement, quicklime, and cement–steel fiber composites showed relatively good improvement effects, with varying degrees of reduction in disintegration rate and disintegration speed; fly ash and polypropylene fiber only slowed the disintegration rate in the absence of freeze-thaw cycles; the cement–steel fiber composite material had better improvement effects than a single material (cement). Freeze-thaw cycles have a promoting effect on soil disintegration.
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Key words:
- loess /
- fluid-consolidated soil /
- disintegration /
- freeze-thaw cycles
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表 1 黄土基本物理性质
Table 1. Basic physical properties of loess
最大干密度
/(g·cm−3)孔隙比 初始含水率/% 塑限
/%液限
/%1.72 1.06 15.2 16.1 28.3 表 2 粉煤灰化学成分
Table 2. Chemical composition of fly ash
化学
成分SiO2 Al2O3 CaO Fe2O3 MgO SO3 含量/% 43 23 5.6 2.5 0.95 0.8 表 3 改良材料配比
Table 3. Improved material proportion
改良材料 材料掺量 水泥 5%,10%,15% 生石灰 10%,15%,20% 粉煤灰 10%,15%,20% 聚丙烯纤维 0.2%,0.4%,0.8% 水泥+仿钢纤维 水泥5%+纤维0.2% 水泥5%+纤维0.4% 水泥5%+纤维0.8% 水泥10%+纤维0.2% 水泥10%+纤维0.4% 水泥10%+纤维0.8% 水泥15%+纤维0.2% 水泥15%+纤维0.4% 水泥15%+纤维0.8% -
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