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Energy absorption and damage prevention in a submerged floating tunnel during internal blast loading

机译:内部爆破荷载作用下淹没式浮动隧道的能量吸收和破坏预防

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摘要

Experiments on sandwich structures with an aluminum foam core and aluminum sheet plates are done in the shock tube facility at SIMLab. Aluminum foam is a lightweight material with many applications in a wide range of fields. It is a good energy absorber in uniaxial compression and therefore a great protective material. Additionally, aluminum foam is good at absorbing sound and has great fire resistance.The Norwegian Public Roads Administration (NPRA) currently investigates the possibility of building a submerged floating tunnel across the Sognefjord. The investigation is part of a project to remove all ferries across the fjords along Norway s coastal highway (E39). An important consideration regarding the safety of such a structure is the resistance against explosions caused by an accident inside the tunnel or other sources. When an explosion occurs, a blast wave will be generated and propagate away from the source. A shock tube facility is used to simulate the properties of a blast wave and for investigating blast effects on structures like sandwich plates with aluminum foam core.Uniaxial compression tests on aluminum foam are performed to achieve the material properties before the sandwich plates are tested in the shock tube. A strain-hardening model for uniaxial and hydrostatic compression is calibrated with the stress-strain curves from the uniaxial compression tests. A power-law description is used to account for the density sensitivity of aluminum foam. The densities of the aluminum plates ranged from 0.21 to 0.42 g/cm3. Various degree of failure was observed in the foam for the different tests in the shock tube.A numerical model have been created in Abaqus/Explicit as an attempt to simulate the shock tube experiments. A Matlab script provided the input parameters required for the simulations. Results from the analyses showed some similarities between the analyses and the experiments. The displacements were quite accurate, but the failure of the aluminum foam core were somewhat different in the numerical analyses compared to the experiments in the shock tube.At the end, parameter studies are performed on sandwich structures with an equivalent thickness compared to monolithic aluminum plates, and on a concrete plate with an aluminum foam layer. The results from the equivalent thickness study showed that an equivalent sandwich structure did not performed better than the monolithic plate. From the analyses on concrete plates with an aluminum foam layer, the response in the concrete part increased when adding aluminum foam.
机译:在SIMLab的减震管设施中对具有铝泡沫芯和铝板的三明治结构进行了实验。泡沫铝是一种轻质材料,具有广泛的应用领域。它在单轴压缩中是一种很好的能量吸收剂,因此是一种很好的保护材料。此外,泡沫铝还具有良好的吸声和耐火性。挪威公共道路管理局(NPRA)目前正在研究在松恩峡湾修建淹没式浮动隧道的可能性。这项调查是一个项目的一部分,该项目旨在清除挪威沿海公路(E39)上峡湾中的所有渡轮。关于这种结构的安全性的重要考虑因素是抵抗由隧道内部或其他来源的事故引起的爆炸的抵抗力。发生爆炸时,将产生爆炸波,并从源传播开。冲击管装置用于模拟爆炸波的性能,并研究爆炸对诸如泡沫铝芯夹芯板等结构的冲击作用。在对泡沫铝芯进行单轴压缩测试之前,先对泡沫铝进行材料性能测试。减震管。使用单轴压缩测试中的应力-应变曲线对单轴和静水压缩的应变硬化模型进行了校准。幂律描述用于说明泡沫铝的密度敏感性。铝板的密度为0.21至0.42 g / cm3。对于在冲击管中进行的不同测试,在泡沫中观察到了各种程度的破坏.Abaqus / Explicit中创建了一个数值模型,以尝试模拟冲击管实验。 Matlab脚本提供了仿真所需的输入参数。分析结果表明分析与实验之间存在一些相似之处。位移相当准确,但泡沫铝芯的破坏与激波管中的实验相比在数值分析上有所不同。最后,对与单片铝板相比等效厚度的夹层结构进行了参数研究,并在带有铝泡沫层的混凝土板上。等效厚度研究的结果表明,等效夹层结构的性能没有比整体板更好。根据对带有泡沫铝层的混凝土板的分析,当添加泡沫铝时,混凝土零件的响应增加。

著录项

  • 作者

    Tømte Anders;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 eng
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