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Study of the Complex Stiffness of a Vibratory Mechanical System with Shape Memory Alloy Coil Spring Actuator

机译:形状记忆合金线圈弹簧执行机构振动机械系统的复刚度研究

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The vibration control is an important area in the dynamic of structures that seeks to reduce the amplitude of structural responses in certain critical frequency ranges. Currently, the scientific development leads to the application of some actuators and sensors technologically superior comparing to the same features available on the market. For developing these advanced sensors and actuators, smart materials that can change their mechanical properties when subjected to certain thermomechanical loads can be employed. In this context, Shape memory alloys (SMAs) may be used for developing dynamic vibration dampers which are capable of acting on the system providing proper tuning of the excitation frequency and the natural frequency. This paper aims to analyze the behavior of the stiffness and damping of a SMA helical coil spring actuator coupled to a mechanical system of one degree of freedom (1 DOF) subjected to an unbalanced excitement force and a temperature control system. By analyzing the effect of these parameters on the structural response and considering the concept of complex stiffness, it can be possible to predict the system's behavior within certain acceptable ranges of vibration, already in the design phase.
机译:振动控制是结构动力学中的一个重要领域,它试图减小某些临界频率范围内结构响应的幅度。当前,科学发展导致了一些执行器和传感器在技术上的应用,而这些执行器和传感器与市场上的相同功能相比具有优势。为了开发这些先进的传感器和执行器,可以使用智能材料,这些材料在承受一定的热机械载荷时会改变其机械性能。在这种情况下,形状记忆合金(SMA)可用于开发动态减振器,该减振器能够作用于提供激励频率和固有频率适当调整的系统。本文旨在分析SMA螺旋螺旋弹簧致动器的刚度和阻尼行为,该致动器耦合到承受不平衡激励力的一自由度(1 DOF)机械系统和温度控制系统。通过分析这些参数对结构响应的影响并考虑复杂刚度的概念,可以在设计阶段已经确定的某些可接受的振动范围内预测系统的行为。

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