首页> 外文期刊>Smart Materials & Structures >Shape memory alloy wire-based smart natural rubber bearing
【24h】

Shape memory alloy wire-based smart natural rubber bearing

机译:形状记忆合金线基智能天然橡胶轴承

获取原文
获取原文并翻译 | 示例
       

摘要

In this study, two types of smart elastomeric bearings are presented using shape memory alloy (SMA) wires. Due to the unique characteristics of SMAs, such as the superelastic effect and the recentering capability, the residual deformation in SMA-based natural rubber bearings (SMA-NRBs) is significantly reduced whereas the energy dissipation capacity is increased. Two different configurations of SMA wires incorporated in elastomeric bearings are considered. The effect of several parameters, including the shear strain amplitude, the type of SMA, the aspect ratio of the base isolator, the thickness of SMA wire, and the amount of pre-strain in the wires on the performance of SMA-NRBs is investigated. Rubber bearings are composed of natural rubber layers bonded to steel shims as reinforcement. Results show that ferrous SMA wire, FeNiCuAlTaB, with 13.5% superelastic strain and a very low austenite finish temperature (-62 °C), is the best candidate to be used in SMA-NRBs subjected to high shear strain amplitudes. In terms of the lateral flexibility and wire strain level, the smart rubber bearing with a cross configuration of SMA wires is more efficient. Moreover, the cross configuration can be implemented in high-aspect-ratio elastomeric bearings since the strain induced in the wire does not exceed the superelastic range. When cross SMA wires with 2% pre-strain are used in a smart NRB, the dissipated energy is increased by 74% and the residual deformation is decreased by 15%.
机译:在这项研究中,使用形状记忆合金(SMA)线呈现了两种类型的智能弹性轴承。由于SMA的独特特性,例如超弹性效应和集中能力,SMA天然橡胶轴承(SMA-NRB)的残余变形显着减少,而能量耗散能力却得到提高。考虑了结合在弹性轴承中的SMA线的两种不同配置。研究了剪切应变幅度,SMA类型,基础隔离器的长宽比,SMA导线的厚度以及导线中的预应变量等几个参数对SMA-NRB性能的影响。橡胶轴承由粘结到钢垫片上的天然橡胶层组成,作为增强材料。结果表明,具有13.5%的超弹性应变和非常低的奥氏体完成温度(-62°C)的黑色SMA铁丝FeNiCuAlTaB是用于承受高剪切应变幅度的SMA-NRB的最佳候选材料。就横向柔韧性和线应变水平而言,具有SMA线交叉配置的智能橡胶轴承效率更高。此外,由于线材中引起的应变不超过超弹性范围,因此可以在高纵横比的弹性体轴承中实现交叉构造。在智能NRB中使用预应变为2%的交叉SMA导线时,耗散能量增加了74%,残余变形减少了15%。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号