单向循环荷载作用下海上斜坡上螺旋单桩的性能

IF 5.5 2区 工程技术 Q1 ENGINEERING, CIVIL
T. Jegadeesh Kumar, Deendayal Rathod, K.T. Krishnanunni
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引用次数: 0

摘要

对全球发电至关重要的海上风力涡轮机面临着恶劣海洋条件的重大挑战,包括强风、海浪和不平坦的海床。为了优化基础方案,本研究对螺旋单桩的横向性能进行了研究,比较了常规单桩在循环荷载下的横向性能,重点研究了桩形和土壤条件的变化。对螺旋桩进行了单、单向循环加载模型试验。研究中的关键变化包括三种土壤密度(Dr = 35%, 55%和75%),以及不同的斜坡条件(平坦,1V:5H, 1V:3H, 1V:2H)和桩位置(c = 0Dp, 2.5Dp, 5Dp, 7.5Dp)。此外,研究了在0.25Hz频率下施加超过1000次的负载幅值(ξb = 50%, 40%和30%)的影响。结果表明,螺旋桩优于传统的单桩,表现出高达25%的横向荷载能力,30%的累积旋转减少,20%的循环刚度增加,特别是在致密的土壤中。此外,分析表明,螺旋桩的性能显著提高,当放置在更靠近坡顶和较密的土壤。使用PLAXIS 3D进行的数值模拟证实了这些实验结果,表明螺旋桩在不同的荷载条件和边坡配置下始终保持优越的横向阻力和循环性能。这项研究强调了螺旋桩在提高海上风力涡轮机基础稳定性和性能方面的潜力,提供了一种比单桩系统更强大、更有效的替代方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Behaviour of an offshore helical monopile located on sloping ground under one-way cyclic loading
Offshore wind turbines, crucial for global electricity generation, face significant challenges from harsh marine conditions, including strong wind, waves, and uneven seabeds. To optimize the foundation solution, this study investigates the lateral performance of helical monopiles, comparing conventional monopiles under cyclic loading, with a focus on variations in pile configuration and soil conditions. Model-scale experiments were conducted with helical piles subjected to both monotonic and one-way cyclic loading conditions. Key variations in the study include three soil densities (Dr = 35 %, 55 %, and 75 %), along with different slope conditions (Flat, 1V:5H, 1V:3H, 1V:2H) and pile positions (c = 0Dp, 2.5Dp, 5Dp, 7.5Dp). Additionally, the effect of load amplitudes (ξb = 50 %, 40 %, and 30 %) applied at a frequency of 0.25Hz for over 1000 cycles was examined. Results showed that helical piles outperformed conventional monopiles, exhibiting up to 25 % higher lateral load capacity, 30 % less accumulated rotation, and 20 % greater cyclic stiffness, especially in dense soils. Furthermore, the analysis revealed that the performance of helical piles significantly improved when placed nearer to the slope crest and in denser soils. Numerical simulations using PLAXIS 3D confirmed these experimental findings, demonstrating that helical piles consistently maintain superior lateral resistance and cyclic performance under varying loading conditions and slope configurations. This study underscores the potential of helical piles to enhance the stability ad performance of offshore wind turbine foundations, offering a more robust and efficient alternative to monopile systems.
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来源期刊
Ocean Engineering
Ocean Engineering 工程技术-工程:大洋
CiteScore
7.30
自引率
34.00%
发文量
2379
审稿时长
8.1 months
期刊介绍: Ocean Engineering provides a medium for the publication of original research and development work in the field of ocean engineering. Ocean Engineering seeks papers in the following topics.
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