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Investigation of a Small-Scale Compressed Air Energy Storage Pile as a Foundation System

机译:小型压缩空气储能桩作为基础系统的研究

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Compressed air energy storage (CAES), in which surplus energy is utilized for compressing ambient air that can be released later to provide necessary energy, is being actively pursued in a last decade. This technology has a potential to strengthen the efficiency of renewable energy generation, such as solar and wind power. In addition to the large-scale energy storages, CAES can be operated at a small-scale to support facilities such as residential buildings. In this case, closed-ended steel piles can serve to provide the space where pressurized air is stored during off-peak periods, which leads to an idea of small-scale CAES pile. To continue pursuing the idea of using pile foundation system as an energy storage vessel, we need to examine long-term stability of CAES pile. In this pilot study, we investigate a finite element model of an axisymmetric CAES pile that is subject to the internal uniform pressurization while supporting a constant structural load. Long-term stability of the CAES pile is assessed from the first 10 pressurization-depressurization cycles at the various initial dead load conditions. Elasto-perfectly-plastic constitutive law is employed at the pile-soil interface for simplicity. We are able to observe that vertical displacement of the CAES pile accumulates with negligible radial deformation as the number of pressure cycle increases.
机译:在过去的十年中,人们积极地追求压缩空气能量存储(CAES),其中利用多余的能量来压缩周围的空气,这些空气随后可以释放以提供必要的能量。该技术具有增强可再生能源发电效率的潜力,例如太阳能和风能。除了大规模储能之外,CAES还可进行小规模运营,以支持住宅建筑等设施。在这种情况下,封闭式钢桩可以提供非高峰时期用于存储压缩空气的空间,这导致了小型CAES桩的想法。为了继续追求将桩基础系统用作储能容器的想法,我们需要检查CAES桩的长期稳定性。在这项前期研究中,我们研究了轴对称CAES桩的有限元模型,该桩在承受恒定结构载荷的同时受到内部均匀加压。在各种初始恒载条件下,从前10个加压-减压循环中评估CAES桩的长期稳定性。为了简化起见,在桩-土界面处采用了弹塑性完美本构定律。我们可以观察到,随着压力循环次数的增加,CAES桩的竖向位移以可忽略的径向变形积累。

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