Energy piles are gaining increased popularity due to a growing demand for clean energy. To further advance the understanding of soil-structure interaction in energy piles, recently-derived analytical solutions have been implemented to investigate the impact of stratigraphy on the soil-structure interaction. This was accomplished by comparing the measured and predicted head displacements, axial strains and stresses in an energy pile embedded in the actual homogeneous and layered soil profiles, as well as into synthetic homogeneous soil profiles. The analytical solutions for homogeneous soil profile captured the smooth experimentally observed response versus depth very well. In the case of a layered soil profile, the corresponding analytical model was capable of capturing nuances in trends of axial stress and strain versus depth at the interface of different layers. The analytical predictions for the layered profile appear to be slightly less accurate than for the homogenous profile. The experimental data obtained from the layered profile appear to be a bit more scattered than those from the homogeneous profile. In the former case, the interplay of the individual soil layers with the pile occurs while maintaining the continuity of the pile stress and displacement at the interface of different layers. The response throughout each layer of the layered profile is quantitatively different than the corresponding homogeneous response. Nevertheless, qualitatively the response throughout each layer of the layered profile is similar to the response of the pile embedded in the corresponding homogeneous layer.
翻译:由于对清洁能源的需求日益增长,能源堆积越来越受欢迎。为了进一步加深对能源堆中土壤结构相互作用的理解,最近制定了分析解决办法,以调查海陆地形对土壤结构相互作用的影响。通过比较实际同质和分层土壤剖面以及合成同质土壤剖面所嵌入的能源堆积中的测量和预测头部移位、轴线菌株和压力,以及合成同质土壤剖面,能源堆积中的能量堆积中的能量堆积越来越受欢迎。同质土壤剖面的分析解决办法捕捉到经实验观测到的平滑反应和深度的深度。在多层土壤剖面剖面中,相应的分析模型能够捕捉到不同层压力和紧张与深度趋势的细微变化。对层剖面图的分析预测似乎比同质剖面图中略为准确。从层图层中获取的实验数据似乎比同质剖面图中的数据更加分散。在前一种情况下,单个土壤层与堆积的相互作用,同时维持不同层界面的堆积压力和迁移的连续性。每个层层的对应反应是整层的整层的平质反应。