考虑桩-土相互作用的膨胀土地区集热场桩基础抗拔承载性能分析

ANALYSIS OF UPLIFT BEARING CAPACITY OF PILE FOUNDATIONS IN SOLAR COLLECTOR FIELDS WITHIN EXPANSIVE SOIL REGIONS CONSIDERING PILE-SOIL INTERACTION

  • 摘要: 随着我国能源结构转型的持续推进,光热发电扮演着愈发重要的角色。光热电站集热场定日镜常采用小型基桩作为其基础。在膨胀土地区,地基土体遇水膨胀,会导致基桩因膨胀力而发生抬升,危及上部集热结构的安全。针对此问题,为探究膨胀作用对桩体抬升的影响,该文设计了膨胀试验,得到了膨胀率-垂直压力关系式;基于桩-土相互作用机理,利用荷载传递法推导了考虑膨胀特性及时程关系的单桩荷载传递弹性理论解;为验证该解答的正确性,进一步设计了大比例尺浸水膨胀模型试验。结果表明:在膨胀作用下,桩身上部率先承受上拔力作用,下部受桩周土锚固力作用,桩身轴力呈先增大后减小的趋势,在中性点处轴力最大;随着浸水时间增长,中性点位置沿桩身下移;考虑通过增加桩长抵消桩体上拔带来的不利影响,计算了阻止桩体上拔的最小设计桩长。该研究可为膨胀土地区光热发电项目集热场桩基础设计提供理论参考。

     

    Abstract: With the ongoing transformation of China's energy structures, solar thermal power generation is playing an increasingly vital role. Small piles are often used as the foundation of heliostat in solar thermal power station. In expansive soil regions, the swelling behavior of foundation soil under moisture absorption induces uplift forces on heliostat pile foundations, threatening structural safety. To investigate this mechanism, laboratory expansion tests were conducted to establish the swelling ratio-vertical pressure relationship. An elastic theoretical solution for single-pile load transfer was derived via the load transfer method, integrating time-dependent pile-soil interaction and soil expansivity. The validation through large-scale immersion model tests revealed that under swelling conditions, upward tensile forces dominate the upper pile segment, while anchoring forces act on the lower segment, resulting in a non-monotonic axial force distribution peaking at the neutral point. Prolonged immersion caused downward migration of the neutral point along the pile shaft. A minimum pile length was thusly designed and calculated to counteract uplift displacement through anchorage enhancement, so as to provide a theoretical guidance for pile foundation design in solar thermal collector fields within expansive soil areas.

     

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