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Thermal protection for a self-sensing piezoelectric control system

机译:自感应压电控制系统的热保护

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Piezoelectric materials exhibit high electromechanical coupling that allows them to both generate an electrical signal when strained and, conversely, to produce a strain under an applied electric field. This coupling has led to the use of these materials for a variety of sensing and actuation purposes. One unique application of these materials is their use as self-sensing actuators where both the sensing and actuation functions are performed by a single patch of material. Since the actuation and sensing voltages both exist simultaneously in the piezoelectric material, a specially designed electric circuit, referred to as a bridge circuit, is required to realize the concept. Configuration of the material in this manner is advantageous for control systems due to the enhanced stability associated when collocated control is applied. While certain advantages result from this type of system, precise equilibrium of the bridge circuit is required to achieve stability. This equilibrium is easy to achieve in theory, but difficult in practice due to the thermal dependence of the piezoelectric material's dielectric constant. This study will investigate a novel method of accounting for these changes through the use of thermal switches to passively adjust the bridge circuit and maintain a balanced state. The proposed concept will be theoretically modeled and simulated in a vibration control application to identify the thermal range for stability with and without the array of switches. It will be shown that, through the use of nine thermal switches, the stable operating range can be increased by 95 degrees C while maintaining vibration control performance.
机译:压电材料表现出很高的机电耦合性,这使得它们既可以在应变时产生电信号,又可以在施加电场的情况下产生应变。这种耦合导致了将这些材料用于各种感测和致动目的。这些材料的一种独特应用是将其用作自感应执行器,其中,感应和执行功能均由单个材料片执行。由于激励电压和传感电压都同时存在于压电材料中,因此需要专门设计的电路(称为电桥电路)来实现这一概念。以这种方式构造材料对于控制系统是有利的,这是由于在应用并置控制时相关联的增强的稳定性。尽管这种类型的系统具有某些优点,但需要电桥电路的精确平衡才能实现稳定性。这种平衡理论上很容易实现,但由于压电材料介电常数的热依赖性,在实践中很难实现。这项研究将研究一种通过使用热开关被动调节桥电路并保持平衡状态来解决这些变化的新颖方法。在振动控制应用中,理论上将对提出的概念进行建模和仿真,以识别具有或不具有开关阵列的稳定性的热范围。将显示,通过使用九个热敏开关,可以在保持振动控制性能的同时将稳定的工作范围增加95摄氏度。

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