首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems >NUMERICAL HEAT TRANSFER MODELLING OF SMA ACTUATORS AND MODEL COMPARISON
【24h】

NUMERICAL HEAT TRANSFER MODELLING OF SMA ACTUATORS AND MODEL COMPARISON

机译:SMA执行机构的数值传热建模及模型比较

获取原文

摘要

Shape memory alloys (SMA) can be used to create actuators for use in mechanical systems that carry pronounced benefits with their low weight, high strength, and low cost when coupled with advancements such as robust self-sensing. However, there exist drawbacks in the form of slow system response and complex material behavior. The design and implementation of controllers that drive SMA actuators successfully can pose a challenge, and accurate modelling of the material in software can help to optimize the system response time and power requirements. We have created a variety of tools to help implement these actuators into simulations that capture accurate thermal and mechanical responses of various SMA systems under a variety of control laws. In particular, thermo-electro-mechanical models of SMA behavior are implemented into software representations of mechanical systems such that the entire temperature, stress, and phase profiles of an SMA actuator can be accurately determined via simulation. Because analytical equations for modelling SMA behavior quickly become so complex to be untenable, we use stable numerical schemes to solve for these profiles. In particular, a finite difference scheme allows for spatial and temporally discretized temperature profiles along a shape memory actuator which can be solved for using empirically derived expressions for the heat transfer coefficient that dictated convective heat transfer. These types of models allow for a variety of boundary conditions to capture a number of SMA geometries, orientations, and applications. This paper presents the results of the numerical schemes for thermal cycling and a sliding mode controller used to drive a simple SMA actuator with varying boundary conditions and compares them to experimental results.
机译:形状记忆合金(SMA)可用于制造用于机械系统的执行器,该执行器具有重量轻,强度高和成本低等优点,并结合先进的技术(例如强大的自感应)。但是,存在系统响应速度慢和材料行为复杂的缺点。成功驱动SMA执行器的控制器的设计和实现可能会带来挑战,而在软件中对材料进行精确建模可以帮助优化系统响应时间和功耗要求。我们创建了各种工具来帮助将这些执行器实施到仿真中,以在各种控制律下捕获各种SMA系统的准确热和机械响应。特别是,将SMA行为的热电机械模型实施到机械系统的软件表示中,以便可以通过仿真准确确定SMA执行器的整个温度,应力和相位分布。由于用于建模SMA行为的分析方程式很快变得如此复杂以至于难以为继,因此我们使用稳定的数值方案来求解这些轮廓。特别地,有限差分方案允许沿着形状记忆致动器的空间和时间离散的温度分布,这可以通过使用经验导出的表示对流热传递的热传递系数来解决。这些类型的模型允许各种边界条件来捕获许多SMA几何形状,方向和应用程序。本文介绍了用于热循环的数值方案的结果,以及用于驱动具有变化边界条件的简单SMA致动器的滑模控制器,并将其与实验结果进行了比较。

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