温度和吸力对饱和及非饱和粘土砂结构界面剪切行为的耦合效应

She-Qiang Cui, Chao Zhou, Qingyi Mu, Hua-Fu Pei, Jian-Hua Yin
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摘要

饱和和非饱和土壤-结构界面的热力学行为在分析能量桩的性能方面起着关键作用。以往的研究主要集中在饱和界面上,并没有研究温度和吸力对界面行为的耦合影响。在本研究中,通过新型温度和吸力控制直接剪切设备,对归一化粗糙度为 1 的粘土砂结构界面进行了测试。试验考虑了各种温度(8、20 和 42 °C)、净法向应力(25、50、100、150、225 和 300 kPa)和吸力(0、50 和 200 kPa)。结果表明,温度对摩擦角的影响较小,42 °C时的摩擦角比8 °C时的摩擦角小约2.2°,这可能是因为加热可以减少剪切区中由剪切引起的收缩。更重要的是,界面强度会随着吸力的增加而非线性增加,而且增加速度与温度有关。在净法向应力为 50 kPa 的条件下加热界面,由于表面张力减小和热引起的土壤结构变化,会降低这种递增率。与此相反,在净法向应力为 150 kPa 且温度增量相同的情况下,这一增量会增加,这可能是因为加热后的试样由于热收缩而具有更多的小尺寸孔隙和更多的半月板水透镜,其影响超过了表面张力的影响。
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Coupled effects of temperature and suction on the shear behaviour of saturated and unsaturated clayey sand-structure interfaces
The thermo-mechanical behaviour of saturated and unsaturated soil-structure interfaces plays a key role in analysing the performance of energy piles. Previous studies focused on saturated interfaces and did not investigate the coupled effects of temperature and suction on interface behaviour. In this study, a clayey sand-structure interface with a normalised roughness of one was tested through a new temperature- and suction-controlled direct shear apparatus. A variety of temperatures (8, 20 and 42 °C), net normal stresses (25, 50, 100, 150, 225 and 300 kPa) and suctions (0, 50 and 200 kPa) were considered. The results show that temperature can have a minor impact on the friction angle, whose value at 42 °C is smaller by about 2.2° than that at 8 °C, likely because heating can reduce the shearing-induced contraction in the shear zone. More importantly, the interface strength increases nonlinearly with increasing suction, and the incremental rate is temperature-dependent. Heating the interface at a net normal stress of 50 kPa reduces this incremental rate due to surface tension reduction and thermally-induced changes in soil fabric. In contrast, this incremental rate increases at a net normal stress of 150 kPa with the same temperature increment, probably because the heated specimen has more small-size pores due to thermal contraction and more menisci water lenses, whose influence outweighs the effects of surface tension.
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