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Performance of Superelastic Shape Memory Alloy Reinforced Concrete Elements Subjected to Monotonic and Cyclic Loading.

机译:承受单调和循环载荷的超弹性形状记忆合金增强混凝土元件的性能。

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摘要

The ability to adjust structural response to external loading and ensure structural safety and serviceability is a characteristic of Smart Systems. The key to achieving this is through the development and implementation of smart materials. An example of a smart material is a Shape Memory Alloy (SMA).;Reinforced concrete structures are designed to sustain severe damage and permanent displacement during strong earthquakes, while maintaining their integrity, and safeguarding against loss of life. The design philosophy of dissipating the energy of major earthquakes leads to significant strains in the steel reinforcement and, consequently, damage in the plastic hinge zones. Most of the steel strain is permanent, thus leading to large residual deformations that can render the structure unserviceable after the earthquake. Alternative reinforcing materials such as superelastic SMAs offer strain recovery upon unloading, which may result in improved post-earthquake recovery. Shape Memory Alloys have the ability to dissipate energy through repeated cycling without significant degradation or permanent deformation. Superelastic SMAs possess stable hysteretic behavior over a certain range of temperature, where its shape is recoverable upon removal of load. Alternatively, Martensite SMAs also possess the ability to recover its shape through heating. Both types of SMA demonstrate promise in civil infrastructure applications, specifically in seismic-resistant design and retrofit of structures.;The primary objective of this research is to investigate experimentally the performance of concrete beams and shear walls reinforced with superelastic SMAs in plastic hinge regions. Furthermore, this research program involves complementary numerical studies and the development of a proposed hysteretic constitutive model for superelastic SMAs applicable for nonlinear finite element analysis. The model considers the unique characteristics of the cyclic response of superelastic materials.
机译:调整结构对外部载荷的响应并确保结构安全性和可维修性的能力是Smart Systems的一大特色。实现这一目标的关键是通过开发和实施智能材料。形状记忆合金(SMA)是智能材料的一个示例;钢筋混凝土结构旨在在强烈地震中承受严重的破坏和永久位移,同时保持其完整性并防止生命损失。耗散大地震能量的设计原理会导致钢筋的显着应变,从而导致塑料铰链区损坏。大部分钢应变是永久性的,因此会导致较大的残余变形,从而使结构在地震后无法使用。替代增强材料(例如超弹性SMA)可在卸载时提供应变恢复,这可能会改善地震后的恢复。形状记忆合金具有通过反复循环消散能量的能力,而不会发生明显的降解或永久变形。超弹性SMA在一定温度范围内具有稳定的磁滞行为,在去除负载后其形状即可恢复。或者,马氏体SMA也具有通过加热恢复其形状的能力。两种类型的SMA都在民用基础设施应用中显示出了希望,特别是在抗震设计和结构翻新方面。这项研究的主要目的是通过实验研究塑料铰链区域中用超弹性SMA增强的混凝土梁和剪力墙的性能。此外,该研究计划涉及补充数值研究和拟议的适用于非线性有限元分析的超弹性SMA滞回本构模型的开发。该模型考虑了超弹性材料循环响应的独特特征。

著录项

  • 作者

    Abdulridha, Alaa.;

  • 作者单位

    University of Ottawa (Canada).;

  • 授予单位 University of Ottawa (Canada).;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 347 p.
  • 总页数 347
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:41:09

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