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Relationship Between Temperature and Earth Pressure for a Rigidly Framed Earth Retaining Structure

机译:刚性框架挡土结构温度与土压力的关系

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The relationship between temperature and earth pressure acting on a rigidly framed earth-retaining structure (RFERS) subject to wide temperature variation was explored. A distressed RFERS open concrete garage that retains 11 m (36 ft) of soil was instrumented. After some repairs, movement of the building was monitored and recorded hourly for a period of four and a half years. The monitoring revealed complex temperature-dependent soil-structure interactions. The measured displacements were used to calculate the earth pressure coefficient using closed form equations that were developed by treating the structure as an equivalent cantilever beam, and calibrating the expression using a total of 42,000 FEM models. The data indicated that the coefficient of earth pressure behind the monitored RFERS had a strong linear correlation with temperature. During the cold season the building contracted, and the retained soil followed. During the hot season, the building was unable to overcome the earth pressure, thus it expanded away from the soil, resulting in a cumulative annual displacement. The coefficient of lateral earth pressure changed by approximately 0.005/℃, varying in the range of 1.25-1.5, depending on the season. The study also reveals that thermal cycles, rather than lateral earth pressure, caused some of the structural elements to fail.
机译:探索了温度与土压力在温度变化较大的刚性框架挡土结构(RFERS)上的关系。装了一个陷入困境的RFERS开放式混凝土车库,该车库可保留11 m(36 ft)的土壤。进行一些维修后,对建筑物的运动进行监控并每小时记录一次,为期四年半。监测揭示了复杂的温度依赖性土壤-结构相互作用。使用闭合形式方程将实测位移用于计算土压力系数,这些方程是通过将结构视为等效悬臂梁并使用总计42,000个FEM模型校准表达式来开发的。数据表明,监测到的RFERS背后的土压力系数与温度具有很强的线性关系。在寒冷季节,建筑物收缩,残留的土壤随之而来。在炎热的季节,建筑物无法克服土压力,因此它远离土壤膨胀,导致每年的累积位移。根据季节的不同,侧向土压力系数变化约0.005 /℃,在1.25-1.5范围内变化。研究还表明,热循环而不是侧向土压力会导致某些结构元件失效。

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