Research of Strength and Freezing-thawing Durability of Saline Soil Solidified by Modified Sodium Silicate
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摘要: 为了解决盐渍土盐胀和溶陷等不良工程问题,进行了20、40、60℃改性水玻璃碱激发粉煤灰固化盐渍土试验研究. 通过冻融循环试验、无侧限抗压强度试验、X射线衍射光谱以及微观结构测试,研究了温度改性水玻璃固化盐渍土的强度和冻融循环耐久性. 结果表明:改性水玻璃固化盐渍土的强度随温度的升高反而降低;不同温度改性的水玻璃固化盐渍土的抗压强度随冻融循环次数的增加而降低并在冻融10次以后下降幅度减小;不同温度改性水玻璃固化盐渍土没有新的晶体衍射峰出现,随着改性温度的升高,芒硝和白云石的衍射强度增大,表观小孔隙率变大,强度降低,冻融循环后,微观结构遭到破坏.Abstract: In order to solve relevant engineering problems about sulphate salty soil and the collapsibility of saline, research of saline soil solidified by coal ash which was stimulated by temperature modification sodium silicate, was conducted in this paper. Strength and freezing-thawing durability of saline soil solidified by sodium silicate modified by temperature were studied by means of freeze-thaw cycle test, unconfined compressive strength test, X-ray diffraction spectra and microstructure test. The result shows that the strength of saline soil solidified by modified sodium silicate decreases against the rise of temperature. The shear strength of saline soil solidified by sodium silicate which is modified under different temperature decreases while the times of freeze-thaw cycle tests increase and its decreasing range is lessen after 10 times. There is no appearance of new crystal materials in saline soil solidified by sodium silicate modified by temperature. With the increasing of modification temperature, the diffracted intensity of mirabilite and dolomite gets enhanced, the apparent porosity becomes bigger, and strength decreases. The microstructure is damaged after freeze-thaw cycle tests.
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Key words:
- modified sodium silicate /
- saline soil /
- solidification /
- freeze-thaw cycles /
- strength
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表 1 土中离子组成状况
Table 1. State of ion composition in soil
项目 盐渍土 7%石灰+14%粉煤灰+20°Bé水玻璃 C 68 64 阴离子质量分数/ HC 414 2838 (mg·kg-1) S 25840 8213 Cl- 25413 28419 阳离子质量分数/ Ca2+ 4077 1597 (mg·kg-1) Mg2+ 4968 1110 Na++K+ 15732 19519 -
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