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TENSEGRITY STRUCTURES INCORPORATING ACTUATOR AND PSEUDOELASTIC SHAPE MEMORY ALLOYS

机译:包含致动器和假性形状记忆合金的矩形结构

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Tensegrity structures are networks of tensile and com-pressive truss members that have pre-stressability and shape-morphing capabilities. Potential applications of tensegrities in the aerospace, civil, and robotics fields require them to have actuation capabilities and adjustable stiffness. An approach to infuse these properties into tensegrities is to employ active materials. Shape memory alloys (SMAs) are active materials with the ability of exchanging mechanical and thermal energies. They have actuation capabilities enabled by the shape memory effect and large recoverable deformations enabled by the pseudoelas-tic effect. This paper presents a study on the integration of actuator and pseudoelastic SMAs into tensegrities to create a new class of stiff truss structures that exhibit controlled large deformations. A model for tensegrities that incorporates mechanical equilibrium, thermal equilibrium, and an SMA constitutive model is first developed. The tensile members in the tensegrities may be comprised of actuator or pseudoelastic SMA wires. The actuator wires can be manipulated through Joule heating to change the shape of the tensegrity structure on demand. The pseudoelastic wires provide high stiffness under moderate external disturbances, and become compliant and allow for large deformations as their stress is increased by the actuator wires. This unique combination of actuator and pseudoelastic SMA members in tensegrities is demonstrated through examples of controlled morphing of a tensegrity beam and a tensegrity plate. The re- sults show that using pseudoelastic members antagonistic to the actuators, as opposed to elastic members, reduces the accumulated error and the energy required to control the tensegrities.
机译:TenseGrity结构是具有预耐力和形状传感功能的拉伸和集合桁架构件的网络。在航空航天,民用和机器人领域的潜在应用,需要它们具有致动能力和可调节的刚度。将这些属性注入态度的方法是采用活性材料。形状记忆合金(SMA)是具有交换机械和热能的能力的活性材料。它们具有由形状记忆效果和伪效果启用的大可恢复变形的致动功能。本文介绍了执行器和伪弹性SMA成牙龈集成的研究,以创建具有控制大变形的新一类硬桁架结构。首先开发了一种包含机械平衡,热平衡和SMA本构模型的掺入的态度模型。在致动器中的拉伸构件可以由致动器或伪弹性SMA线组成。可以通过焦耳加热操纵致动器导线,以改变随需需求的静态结构的形状。伪弹性线在适度的外部干扰下提供高刚度,并符合致动器线的应力随着应力而变得稳定并允许大变形。通过控制变形的传感的传感和牙线板的示例,证明了这种致动器和伪弹性SMA构件的这种独特的组合。该结果表明,使用伪弹性成员与致动器拮抗,而不是弹性构件,降低了控制矩位所需的累积误差和所需的能量。

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