首页> 外文会议>Conference on behavior and mechanics of multifunctional materials and composites >Thermal response of novel shape memory polymer-shape memory alloy hybrids
【24h】

Thermal response of novel shape memory polymer-shape memory alloy hybrids

机译:新型形状记忆聚合物-形状记忆合金杂化物的热响应

获取原文
获取外文期刊封面目录资料

摘要

Shape memory polymers (SMP) and shape memory alloys (SMA) have both been proven important smart materials in their own fields. Shape memory polymers can be formed into complex three-dimensional structures and can undergo shape programming and large strain recovery. These are especially important for deployable structures including those for space applications and micro-structures such as stents. Shape memory alloys on the other hand are readily exploitable in a range of applications where simple, silent, light-weight and low-cost repeatable actuation is required. These include servos, valves and mobile robotic artificial muscles. Despite their differences, one important commonality between SMPs and SMAs is that they are both typically activated by thermal energy. Given this common characteristic it is important to consider how these two will behave when in close environmental proximity, and hence exposed to the same thermal stimulus, and when they are incorporated into a hybrid SMA-SMP structure. In this paper we propose and examine the operation of SMA-SMP hybrids. The relationship between the two temperatures T_g, the glass transition temperature of the polymer, and T_a, the nominal austenite to martensite transition temperature of the alloy is considered. We examine how the choice of these two temperatures affects the thermal response of the hybrid. Electrical stimulation of the SMA is also considered as a method not only of actuating the SMA but also of inducing heating in the surrounding polymer, with consequent effects on actuator behaviour. Likewise by varying the rate and degree of thermal stimulation of the SMA significantly different actuation and structural stiffness can be achieved. Novel SMP-SMA hybrid actuators and structures have many ready applications in deployable structures, robotics and tuneable engineering systems.
机译:形状记忆聚合物(SMP)和形状记忆合金(SMA)均已在各自领域中被证明是重要的智能材料。形状记忆聚合物可以形成复杂的三维结构,并且可以进行形状编程和大应变恢复。这些对于可展开结构(包括用于太空应用的结构和诸如支架的微结构)尤其重要。另一方面,形状记忆合金很容易在需要简单,静音,轻便和低成本可重复驱动的一系列应用中使用。这些包括伺服器,阀门和移动机器人人造肌肉。尽管它们之间存在差异,但SMP和SMA之间的一个重要共性是它们通常都由热能激活。考虑到这一共同特征,重要的是要考虑当这两个环境靠近环境并因此受到相同的热刺激时,以及当它们被掺入到混合SMA-SMP结构中时,它们的表现如何。在本文中,我们提出并研究了SMA-SMP混合动力车的运行。考虑了两个温度T_g(聚合物的玻璃化转变温度)和T_a(合金的名义奥氏体到马氏体转变温度)之间的关系。我们研究了这两个温度的选择如何影响混合动力汽车的热响应。 SMA的电刺激不仅被认为是一种激活SMA的方法,而且还被认为是诱导周围聚合物发热的一种方法,从而对激励器的行为产生影响。同样地,通过改变SMA的热刺激的速率和程度,可以实现明显不同的致动和结构刚度。新型SMP-SMA混合执行器和结构在可部署结构,机器人技术和可调谐工程系统中具有许多现成的应用。

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