Field observation of the thermal disturbance and freezeback processes of cast-in-place pile foundations in warm permafrost regions

Pub Date : 2023-02-01 DOI:10.1016/j.rcar.2023.04.001
Xin Hou , Ji Chen , YouQian Liu , PengFei Rui , JingYi Zhao , ShouHong Zhang , HaiMing Dang
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Abstract

The bearing capacity of pile foundations is affected by the temperature of the frozen soil around pile foundations. The construction process and the hydration heat of cast-in-place (CIP) pile foundations affect the thermal stability of permafrost. In this paper, temperature data from inside multiple CIP piles, borehole observations of ground thermal status adjacent to the foundations and local weather stations were monitored in warm permafrost regions to study the thermal influence process of CIP pile foundations. The following conclusions are drawn from the field observation data. (1) The early temperature change process of different CIP piles is different, and the differences gradually diminish over time. (2) The initial concrete temperature is linearly related with the air temperature, net radiation and wind speed within 1 h before the completion of concrete pouring; the contributions of the air temperature, net radiation, and wind speed to the initial concrete temperature are 51.9%, 20.3% and 27.9%, respectively. (3) The outer boundary of the thermal disturbance annulus is approximately 2 m away from the pile center. It took more than 224 days for the soil around the CIP piles to return to the natural permafrost temperature at the study site.

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多年冻土区灌注桩基础热扰动和冻融过程的现场观测
桩基的承载力受桩基周围冻土温度的影响。现浇桩基础的施工过程和水化热影响着多年冻土的热稳定性。本文通过对多年冻土区多桩CIP桩内部温度数据、地基附近地面热状态钻孔观测和当地气象站的监测,研究了CIP桩基础的热影响过程。根据野外观测资料得出以下结论:(1)不同CIP桩的早期温度变化过程不同,随着时间的推移,差异逐渐减小。(2)混凝土浇筑完成前1 h内,混凝土初始温度与气温、净辐射、风速呈线性相关;空气温度、净辐射和风速对混凝土初始温度的贡献分别为51.9%、20.3%和27.9%。(3)热扰动环的外边界距离桩心约2 m。CIP桩周围的土壤花了224多天的时间才恢复到研究地点的自然冻土温度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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