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Metaconcrete: Engineered aggregates for enhanced dynamic performance.

机译:元混凝土:工程骨料可增强动态性能。

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摘要

This work presents the development and investigation of a new type of concrete for the attenuation of waves induced by dynamic excitation. Recent progress in the field of metamaterials science has led to a range of novel composites which display unusual properties when interacting with electromagnetic, acoustic, and elastic waves. A new structural metamaterial with enhanced properties for dynamic loading applications is presented, which is named metaconcrete. In this new composite material the standard stone and gravel aggregates of regular concrete are replaced with spherical engineered inclusions. Each metaconcrete aggregate has a layered structure, consisting of a heavy core and a thin compliant outer coating. This structure allows for resonance at or near the eigenfrequencies of the inclusions, and the aggregates can be tuned so that resonant oscillations will be activated by particular frequencies of an applied dynamic loading. The activation of resonance within the aggregates causes the overall system to exhibit negative effective mass, which leads to attenuation of the applied wave motion. To investigate the behavior of metaconcrete slabs under a variety of different loading conditions a finite element slab model containing a periodic array of aggregates is utilized. The frequency dependent nature of metaconcrete is investigated by considering the transmission of wave energy through a slab, which indicates the presence of large attenuation bands near the resonant frequencies of the aggregates. Applying a blast wave loading to both an elastic slab and a slab model that incorporates the fracture characteristics of the mortar matrix reveals that a significant portion of the supplied energy can be absorbed by aggregates which are activated by the chosen blast wave profile. The transfer of energy from the mortar matrix to the metaconcrete aggregates leads to a significant reduction in the maximum longitudinal stress, greatly improving the ability of the material to resist damage induced by a propagating shock wave. The various analyses presented in this work provide the theoretical and numerical background necessary for the informed design and development of metaconcrete aggregates for dynamic loading applications, such as blast shielding, impact protection, and seismic mitigation.
机译:这项工作提出了一种新型混凝土的开发和研究,用于衰减由动态激励引起的波。超材料科学领域的最新进展已导致了一系列新型复合材料,这些复合材料在与电磁波,声波和弹性波相互作用时表现出不同寻常的特性。提出了一种具有增强特性的新型结构超材料,可用于动态荷载应用,该材料称为超混凝土。在这种新的复合材料中,普通混凝土的标准石材和砾石骨料被球形工程夹杂物取代。每个超混凝土骨料具有分层的结构,由重芯和薄的顺应性外涂层组成。这种结构允许在夹杂物的本征频率处或附近发生共振,并且可以调节聚集体,从而通过施加的动态载荷的特定频率来激活共振振荡。聚集体内共振的激活导致整个系统表现出负的有效质量,从而导致所施加的波运动衰减。为了研究超混凝土板在各种不同载荷条件下的行为,利用了包含骨料周期阵列的有限元板模型。通过考虑通过平板的波能量传输来研究超混凝土的频率依赖性,这表明在聚集体的共振频率附近存在大的衰减带。将冲击波载荷施加到弹性板和结合了砂浆基体断裂特性的板模型上,可以发现所供应能量的很大一部分都可以被聚集体吸收,聚集体可以通过选定的冲击波剖面来激活。能量从砂浆基质转移到超混凝土集料上导致最大纵向应力显着降低,从而极大地提高了材料抵抗传播的冲击波引起的破坏的能力。这项工作中提出的各种分析为合理设计和开发用于动态荷载应用的超混凝土集料(例如爆炸防护,冲击防护和减震)提供了必要的理论和数值背景。

著录项

  • 作者

    Mitchell, Stephanie J.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Aerospace engineering.;Mechanical engineering.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 134 p.
  • 总页数 134
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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