4.7 Article

Experimental study of the freeze thaw characteristics of expansive soil slope models with different initial moisture contents

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SCIENTIFIC REPORTS
卷 11, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41598-021-02662-9

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资金

  1. National Key R&D Program of China [2018YFC1505305]
  2. Key R & D Plans of Shandong Province [2019GHY112075]
  3. Special Project Fund of Taishan Scholars of Shandong Province, China [2015-212]
  4. National Major Scientific Research Instrument Development Project [41627801]

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This paper experimentally investigated the effect of freeze-thaw cycling on expansive soil slopes with different initial moisture contents. The results show that higher moisture contents can slow crack development, while soil pressure increases with decreasing temperature. Additionally, as initial moisture contents increase, the soil heat transfer rate and bearing capacity decrease after five freeze-thaw cycling.
This paper presents an experimental investigation on the effect of freeze-thaw cycling on expansive soil slopes with different initial moisture contents. Clay soil from Weifang, China, was remolded and selected to build the expansive soil slope for the indoor slope model tests. A total of five freeze-thaw cycles were applied to the three expansive soil slopes with different moisture contents ranging from 20 to 40%. Variations of the crack developments, displacements, soil pressures and moisture contents of the expansive soil slope with different initial moisture contents during the freeze-thaw cycling were reported and discussed. The results indicate that higher moisture contents can slow the development of cracks and that the soil pressure increases with decreasing temperature. The soil pressure of slope decreases after freeze-thaw cycle, and the change amplitude of soil pressure after freeze-thaw is proportional to water content. The slopes with a moisture content of 20% and 30% shrinks during freezing and expands during thawing, which was named ES-FSTE Model, while the slope with a 40% moisture content shows the opposite behavior. During freeze-thaw cycles, moisture migrates to slope surface. As initial moisture contents increase, the soil heat transfer rate and bearing capacity decreases after five freeze-thaw cycling.

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