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软土夹层地基上的互锁式L型沉箱稳定性试验研究
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作者 陈树理 郭伟 +1 位作者 任宇晓 陈伟 《岩土力学》 北大核心 2026年第1期49-60,共12页
互锁式L型沉箱作为一种新型沉箱结构,能够有效应对复杂海洋环境荷载。该结构在深水港码头、防波堤和人工岛等海洋基础设施中具有广阔的应用前景。通过室内加载模型试验,探究了所提出的互锁式L型沉箱(interlocking L-shaped caisson,简称... 互锁式L型沉箱作为一种新型沉箱结构,能够有效应对复杂海洋环境荷载。该结构在深水港码头、防波堤和人工岛等海洋基础设施中具有广阔的应用前景。通过室内加载模型试验,探究了所提出的互锁式L型沉箱(interlocking L-shaped caisson,简称ILC)替代传统L型沉箱(conventional L-shaped caisson,简称CLC)的可行性。研究了相邻ILC形成的六棱柱空腔内部的填充材料、地基类型和荷载形式对沉箱码头稳定性的影响。与CLC码头相比,在条形荷载下采用碎石或混凝土块联锁加固的ILC码头极限承载力分别提高了15.5%和20.1%。混凝土块联锁加固的ILC码头具有更优的承载性能。随着软土夹层地基替代砂土地基,ILC码头的极限承载力降低,其破坏模式由倾覆破坏变为整体失稳破坏,破坏面形态由直线-圆弧状变为多折线状。随着作用范围更小的集中荷载替代条形荷载,ILC码头的整体性变差,极限承载力显著降低,沉箱附近回填土表面沉降增大。 展开更多
关键词 海洋基础设施 互锁式L型沉箱 软土夹层地基 模型试验 稳定性
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Structural evaluation of the novel connection system between adjacent breakwater caissons
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作者 Seungbok LEE Kyeongjin KIM +3 位作者 Meeju LEE Jeongho KIM Seokmun KIM Jaeha LEE 《Frontiers of Structural and Civil Engineering》 2025年第8期1222-1239,共18页
Climate change is having an increasing impact on coastal infrastructure,leading to more frequent and intensified wave activity,including higher waves driven by typhoons and abnormal sea conditions.Consequently,issues ... Climate change is having an increasing impact on coastal infrastructure,leading to more frequent and intensified wave activity,including higher waves driven by typhoons and abnormal sea conditions.Consequently,issues related to the stability of existing port structures,such as caissons,have become a significant concern.In particular,gravity-type caisson on the land side of coastal port structures require enhanced stability and safety.Gravity-type caissons,which resist external forces through their own weight,are highly vulnerable to functional failures,such as sliding displacement,triggered by abnormal waves shifting specific caissons.The destruction of caisson and quay walls can lead to substantial recovery costs,necessitating improvements in caisson stability to address the challenges posed by increased wave forces and changes in port logistics due to larger vessels.One approach to enhancing caisson stability is the use of long caissons.Long caisson is commonly used where a breakwater is needed to withstand wave action and distribute forces evenly along a length of breakwater.The construction of caissons faces challenges due to limitations on the size of individual units imposed by construction conditions,launching methods,and marine crane requirements.Therefore,connecting multiple caissons to form long caissons presents a viable alternative.This study suggested two connection methods for long caissons.The first method was a hemisphere caisson,which allows the connection parts to seat against each other under self-weight during construction.The second method was a displacement-allowing connection utilizing rubble(embedded rebar connection within riprap connection).This approach allows some displacement while employing rebar to resist excessive deformation,thereby dispersing the resulting wave forces to adjacent caissons.Performance comparisons between the developed connections and conventional gravity-type caissons were conducted using a finite element analysis model.The results indicate that the proposed connections demonstrate improved resistance to wave forces compared to traditional caissons without such connections.Further studies should include field applications and performance evaluations of various caisson sizes under different environmental and geological conditions. 展开更多
关键词 interlocking caisson hemisphere connection deformable joint marine concrete structures discrete element method-finite element method coupling analysis
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