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Smart Structures with Pseudoelastic and Pseudoplastic Shape Memory Alloy: a critical review of their prospective,feasibility and current trends

机译:具有伪弹性和假塑性形状记忆合金的智能结构:对其前瞻性,可行性和当前趋势的关键综述

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This paper provides a critical review of the feasibility to construct smart structures using pseudoelastic and pseudoplastic shape memory alloy for rehabilitation,seismic resistant,retrofit or repair of structural elements and prestress application.Recent developments have been rapid,making the SMA promising a viable solution for numerous situations in buildings and infrastructure.Owing to their distinctive properties including pseudoelastic,pseudoplastic,hysteretic damping due their ability to undergo large deformations and return to their undeformed shape through stress removal(pseudoelastic)or heating(pseudoplastict)and the superior energy dissipation capacity which led to the use of shape-memory alloys to mitigate natural disasters,repair of structural elements,prestress application to enhance structural performance and safety are reviewed,discussed and explains in different alternatives for its application,which should motivate researchers and practicing engineers to extend its use in novel and emerging applications This paper also examines the fundamental characteristics of SMAs,its constitutive material models and the factors influencing its engineering properties.Also stated is the contrast between reinforcement material properties of steel and SMAs and the type of SMA used by the previous researchers.A review of current studies show that the pseudoelastic SMA,pseudoplastic and high-damping characteristics of SMAs result in applications in bridges and buildings that show significant promise.
机译:本文提供了对使用伪弹性和假性形状记忆合金构建智能结构的可行性的关键综述,用于康复,抗震,改造或结构元素和预应力应用的修复。发布已经迅速,使得SMA承诺是一种可行的解决方案建筑物和基础设施中的许多情况。由于它们的独特性质,包括伪弹性,假旋转性,由于其经历大变形的能力,并且通过应力去除(假弹性)或加热(假塑料)和优异的能量耗散能力而返回其未变形的形状。导致使用形状记忆合金来缓解自然灾害,修复结构元素,预应力申请提高结构性能和安全性,讨论并解释其应用的不同替代方案,这应该激励研究人员和练习工程师扩展其我们E在新兴和新兴应用中,本文还研究了SMAS的基本特征,其本构模型和影响其工程特性的因素。所说的是钢和SMA的加固材料性能与前一型的SMA之间的对比。研究人员。当前研究的审查表明,伪弹性SMA,假塑性和高阻尼特性的SMA在桥梁和建筑物中产生了显着承诺的应用。

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