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Thermomechanical behavior of shape memory elastomeric composites

机译:形状记忆弹性体复合材料的热力学行为

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摘要

Shape memory polymers (SMPs) can fix a temporary shape and recover their permanent shape in response to environmental stimuli such as heat electricity, or irradiatioa Most thermally activated SMPs use the macromolecular chain mobility change around the glass transition temperature (T_g) to achieve the shape memory (SM) effects. During this process, the stiffness of the material typically changes by three orders of magnitude. Recently, a composite materials approach was developed to achieve thermally activated shape memory effect where the material exhibits elastomeric response in both the temporary and the recovered configurations. These shape memory elastomeric composites (SMECs) consist of an elastomeric matrix reinforced by a semicrystalline polymer fiber network. The matrix provides background rubber elasticity while the fiber network can transform between solid crystals and melt phases over the operative temperature range. As such it serves as a reversible "switching phase" that enables shape fixing and recovery. Shape memory elastomeric composites provide a new paradigm for the development of a wide array of active polymer composites that utilize the melt-crystal transition to achieve the shape memory effect This potentially allows for material systems with much simpler chemistries than most shape memory polymers and thus can facilitate more rapid material development and insertion. It is therefore important to understand the thermomechanical behavior and to develop corresponding material models. In this paper, a 3D finite-deformation constitutive modeling framework was developed to describe the thermomechanical behavior of SMEC. The model is phenomenological, although inspired by micromechanical considerations of load transfer between the matrix and fiber phases of a composite system. It treats the matrix as an elastomer and the fibers as a complex solid that itself is an aggregate of melt and crystal phases that evolve from one to the other during a temperature change. As such, the composite consists of an elastomer reinforced by a soft liquid at high temperature and a stiff solid at low temperature. The model includes a kinetic description of the non-isothermal crystallization and melting of the fibers during a temperature change. As the fibers transform from melt to crystal during cooling it is assumed that new crystals are formed in an undeformed state, which requires careful tracking of the kinematics of the evolving phases which comes at a significant computational cost. In order to improve the computational efficiency, an effective phase model (EPM) is adopted to treat the evolving crystal phases as an effective medium. A suite of careful thermomechanical experiments with a SMEC was carried out to calibrate various model parameters, and then to demonstrate the ability of the model to accurately capture the shape memory behavior of the SMEC system during complex thermomechanical loading scenarios. The model also identifies the effects of microstructural design parameters such as the fiber volume fraction.
机译:形状记忆聚合物(SMP)可以响应环境刺激(例如热电或辐照)而固定临时形状并恢复其永久形状。大多数热活化SMP使用玻璃化转变温度(T_g)附近的大分子链迁移率变化来实现形状记忆(SM)效果。在此过程中,材料的刚度通常会变化三个数量级。最近,开发了一种复合材料方法来实现热激活的形状记忆效果,其中该材料在临时和恢复配置下均显示出弹性响应。这些形状记忆弹性体复合材料(SMEC)由通过半结晶聚合物纤维网络增强的弹性体基质组成。基质提供背景橡胶弹性,而纤维网络可以在工作温度范围内在固相和熔融相之间转变。这样,它就成为可逆的“转换阶段”,可以进行形状固定和恢复。形状记忆弹性体复合材料为广泛的活性聚合物复合材料的开发提供了新的范例,这些活性聚合物复合材料利用熔融晶体转变来实现形状记忆效果。这可能使材料体系的化学性质比大多数形状记忆聚合物简单得多,因此可以促进更快的材料开发和插入。因此,重要的是了解热力学行为并开发相应的材料模型。在本文中,建立了一个3D有限变形本构模型框架来描述SMEC的热力学行为。该模型是现象​​学的,尽管受到复合系统基体和纤维相之间载荷传递的微观力学考虑的启发。它将基体视为弹性体,将纤维视为复杂的固体,其本身是熔体和结晶相的聚集体,在温度变化时它们会相互演化。这样,复合材料由弹性体组成,该弹性体在高温下由软液体增强,而在低温下则由硬固体增强。该模型包括温度变化过程中纤维的非等温结晶和熔化的动力学描述。由于纤维在冷却过程中从熔体转变为晶体,因此假定新晶体以未变形的状态形成,这需要仔细跟踪演化相的运动学,这将花费大量的计算成本。为了提高计算效率,采用了有效相模型(EPM)将演化中的晶相作为有效介质。使用SMEC进行了一系列仔细的热机械实验,以校准各种模型参数,然后证明了模型在复杂的热机械载荷情况下准确捕获SMEC系统的形状记忆行为的能力。该模型还确定了微观结构设计参数(例如纤维体积分数)的影响。

著录项

  • 来源
    《Journal of the Mechanics and Physics of Solids》 |2012年第1期|p.67-83|共17页
  • 作者单位

    Department of Mechanical Engineering, University of Colorado, Boulder, CO 80309, USA;

    Syracuse Biomaterials Institute, Syracuse University, Syracuse, NY 13244, USA,Department ofBiomedical and Chemical Engineering, Syracuse University, Syracuse, NY 13244, USA;

    Syracuse Biomaterials Institute, Syracuse University, Syracuse, NY 13244, USA,Department of Mechanical and Aerospace Engineering, Syracuse University, Syracuse, NY 13244, USA;

    Winter Park High School, Winter Park, FL 32792, USA;

    Syracuse Biomaterials Institute, Syracuse University, Syracuse, NY 13244, USA,Department ofBiomedical and Chemical Engineering, Syracuse University, Syracuse, NY 13244, USA;

    Department of Mechanical Engineering, University of Colorado, Boulder, CO 80309, USA;

    Department of Mechanical Engineering, University of Colorado, Boulder, CO 80309, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    shape memory; shape memory polymers; soft active materials; thermomechanical behaviors; constitutive models;

    机译:形状记忆形状记忆聚合物;软活性物质;热力学行为;本构模型;
  • 入库时间 2022-08-18 03:00:11

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