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Experimental and Computational Characterization of Dynamic Loading and Structural Resistance of Tunnels in Blast Scenarios

机译:爆炸场景下隧道的动态荷载和结构阻力的实验和计算表征

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摘要

Tunnels are key elements in modern traffic networks. Large-scale accidents and malicious threats, such as fires or explosions creating a blast loading, potentially carry very high economical and societal consequences. Compared to other statistically certain events, explosive-induced blasts in tunnels have an extremely low probability of occurrence but at the same time an enormous damage potential for structure, life, and environment. The paper presents a procedure for evaluation consequences of blast loading threat scenarios, focusing on the local and global structural integrity of tunnel constructions. Methods to capture the dynamic loading and the structural resistance, especially considering the dynamic soil response under large stresses and strains, are described. For that, a combined experimental and numerical approach is chosen, including characterization of the soil by dynamic triaxial experiments realizing stress levels of about 1 MPa, acting in 1 ms on the specimen. The analysis showed that the measured triaxial strength of the soil differed from the static by a factor of 2 for the friction angle. Furthermore, scaled experiments have been designed and conducted to demonstrate and investigate the behavior of a buried tunnel segment under blast loading. The results showed that realistic loading charges can cause massive cracking of the tunnel system and a soil sinking of up to 1 cm. Both experimental results obtained from the triaxial tests on the one hand and from the scaled tunnel experiments on the other hand have been validated using numerical models. The good agreement obtained is the essential input parameter for the evaluation of criticality in tunnels under blast loading scenarios.
机译:隧道是现代交通网络中的关键要素。大规模事故和恶意威胁,例如火灾或爆炸造成爆炸负荷,可能会带来很高的经济和社会后果。与其他统计上确定的事件相比,隧道中爆炸诱发的爆炸发生的可能性极低,但同时也对结构,生命和环境造成巨大破坏。本文提出了一种评估爆炸荷载威胁情景后果的程序,重点是隧道施工的局部和整体结构完整性。描述了捕获动态载荷和结构阻力的方法,尤其是考虑到大应力和应变下的动态土壤响应的方法。为此,选择了一种组合的实验和数值方法,包括通过动态三轴实验对土壤进行表征,以实现约1 MPa的应力水平,并在1毫秒内作用于样品。分析表明,测得的土壤三轴强度与静态的摩擦角相差2倍。此外,已经设计并进行了规模化实验,以证明和研究爆炸荷载作用下埋入式隧道段的行为。结果表明,现实的荷载电荷会导致隧道系统大量开裂,并导致土壤沉降达1厘米。一方面从三轴试验获得的实验结果,另一方面从规模化隧道试验获得的实验结果均已使用数值模型进行了验证。获得的良好协议是评估爆炸荷载情况下隧道的关键性的基本输入参数。

著录项

  • 来源
    《Fire Technology》 |2016年第5期|1595-1618|共24页
  • 作者

    Stolz A.; Ruiz-Ripoll M. L.;

  • 作者单位

    Ernst Mach Inst, Safety Technol & Protect Struct, Fraunhofer Inst High Speed Dynam, Klingelberg 1, D-79588 Efringen Kirchen, Germany;

    Ernst Mach Inst, Safety Technol & Protect Struct, Fraunhofer Inst High Speed Dynam, Klingelberg 1, D-79588 Efringen Kirchen, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Tunnel; Internal detonation; Dynamic triaxial soil strength; Hydrocodes;

    机译:隧道;内部爆轰;动态三轴土强度;Hydrocodes;

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