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temperature-dependent beam for shape-memory alloys: constitutive modelling, finite-element implementation and numerical simulations

机译:形状记忆合金的温度相关梁:本构模型,有限元实现和数值模拟

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This paper presents a thermomechanical one-dimensional constitutive model based on the use of strain and temperature as control variables and able to reproduce the basic responses of shape-memory materials, such as superelasticity, the shape--memory behavior, different response in tension and compression, single-variant martensite reorientation process. The model time-integration is performed and a robust algorithm for the solution of the time-discrete model is addressed together with the algorithmically consistent tangent. The model is also implemented in a small-deformation beam finite-element, which is used to simulate the following applications exploiting the superelastic and/or the shape-memory effect: tensile, pure bending and three-point bending tests, orthodontic wires, two-way (linear and angular) mechanisms. The numerical investigations show that the proposed procedure is an effective computational tool for the simulation of a broad range of applications based on shape--memory materials.
机译:本文提出了一种热机械一维本构模型,该模型基于应变和温度作为控制变量,并能够再现形状记忆材料的基本响应,例如超弹性,形状记忆行为,不同的拉力响应和压缩,单变量马氏体重新定向过程。执行模型时间积分,并针对时间离散模型的求解提出了鲁棒的算法以及算法上一致的切线。该模型还以小变形梁有限元实现,用于利用超弹性和/或形状记忆效应来模拟以下应用:拉伸,纯弯曲和三点弯曲测试,正畸线,两个(线性和角度)机制。数值研究表明,所提出的程序是一种有效的计算工具,可用于基于形状记忆材料的广泛应用仿真。

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