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首页> 外文期刊>Journal of Marine Science and Engineering >Numerical Simulation of Vacuum Preloading for Reinforcing Soil inside Composite Bucket Foundation for Offshore Wind Turbines
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Numerical Simulation of Vacuum Preloading for Reinforcing Soil inside Composite Bucket Foundation for Offshore Wind Turbines

机译:海上风力发电机复合桶基础真空预压加固的数值模拟

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The composite bucket foundation (CBF) with seven honeycomb subdivisions is a new foundation for offshore wind turbine structures. The bearing capacity of CBF can be improved by consolidation of soil inside the CBF, which is caused by the vacuum preloading method after installation. A three-dimensional numerical model is established to simulate the consolidation process of soil for CBF with and without subdivisions in terms of vertical settlement, pore water pressure and void ratio of the soil. This analysis investigates the reinforcement effect of the two foundation types to assess the influence of the bulkheads. The results obtained show that there are obvious reinforcement effects for both foundation types. In the early stage of consolidation, vertical settlement is rapid, and this becomes stable with time. The depth at which the pore water pressure becomes negative is the depth showing the main reinforcement. Vacuum pressure decreases continuously with increase in soil depth and time. In addition, the excess pore water pressure in the soil dissipates, which turns into the soil effective stress. Bulkheads provide vertical drainage channels in the soil and shorten the seepage path, allowing the extraction of more pore water. This is conducive to the improvement of shallow soil, while also decreasing the extraction of pore water in deep soil and the region of the soil that can be reinforced.
机译:具有七个蜂窝分区的复合桶形基础(CBF)是用于海上风力涡轮机结构的新基础。 CBF内部的土壤固结可以提高CBF的承载能力,这是由于安装后的真空预压方法引起的。建立了三维数值模型,以模拟在垂直沉降,孔隙水压力和土壤孔隙率下,有无细分的CBF的土壤固结过程。该分析调查了两种基础类型的加固效果,以评估舱壁的影响。所得结果表明,两种地基都有明显的加固作用。在合并的早期,垂直沉降很快,并且随着时间的推移变得稳定。孔隙水压力为负的深度是表示主要增强物的深度。真空压力随着土壤深度和时间的增加而连续降低。此外,土壤中多余的孔隙水压力会消散,这将转化为土壤有效应力。隔板在土壤中提供了垂直的排水通道,并缩短了渗流路径,从而可以提取更多的孔隙水。这有利于改善浅层土壤,同时也减少了深层土壤和可增强土壤区域中孔隙水的提取。

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