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首页> 外文期刊>Journal of Materials Science >Broadband Electromechanical Spectroscopy: characterizing the dynamic mechanical response of viscoelastic materials under temperature and electric field control in a vacuum environment
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Broadband Electromechanical Spectroscopy: characterizing the dynamic mechanical response of viscoelastic materials under temperature and electric field control in a vacuum environment

机译:宽带机电光谱:表征粘弹性材料在真空环境中温度和电场控制下的动态机械响应

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The viscoelasticity of a variety of active materials is controllable, e.g., by the application of electric or thermal fields. However, their viscoelastic behavior cannot be fully explored by current methods due to limitations in their control of mechanical, electrical, and thermal fields simultaneously. To close this gap, we introduce Broadband Electromechanical Spectroscopy (BES). For the specific apparatus developed, specimens are subjected to bending and torsional moments with frequencies up to 4 kHz and amplitudes up to 10(-4) Nm (the method is sufficiently general to allow for higher and wider frequency ranges). Deflection/twist is measured and moments are applied in a contactless fashion to minimize the influence of the apparatus compliance and of spurious damping. Electric fields are applied to specimens via surface electrodes at frequencies up to 10 Hz and amplitudes up to 5 MV/m. Experiments are performed under vacuum to remove noise from the surrounding air. Using BES, the dynamic stiffness and damping in bending and torsion of a ferroelectric ceramic, lead zirconate titanate, were measured at room temperature, while applying large, cyclic electric fields to induce domain switching. Results reveal large increases of the specimen's damping capacity and softening of the modulus during domain switching. The effect occurs over wide ranges of mechanical frequencies and permits lowering of the resonance frequencies. This promises potential for using ferroelectrics for active vibration control beyond linear piezoelectricity. More generally, BES helps improve current understanding of microstructure kinetics (such as during domain switching) and how it relates to the macroscopic viscoelastic response of materials.
机译:各种活性材料的粘弹性是可控制的,例如通过施加电场或热场。然而,由于它们同时控制机械,电场和热场的局限性,目前的方法无法完全探究它们的粘弹性行为。为了缩小这一差距,我们引入了宽带机电光谱(BES)。对于开发的特定设备,样品要经受频率高达4 kHz且幅度高达10(-4)Nm的弯曲和扭转力矩(该方法足够通用,可以允许更高和更宽的频率范围)。测量挠度/扭转量,并以非接触方式施加力矩,以最大程度地减小设备柔韧性和寄生阻尼的影响。电场通过表面电极以高达10 Hz的频率和高达5 MV / m的振幅施加到样品上。实验是在真空下进行的,以消除周围空气中的噪音。使用BES,在室温下测量铁电陶瓷锆钛酸铅的动态刚度和弯曲和扭转阻尼,同时施加大的循环电场以引起畴切换。结果表明,在域切换期间,样品的阻尼能力大大提高,模量软化。该效应在较宽的机械频率范围内发生,并允许降低共振频率。这有望将铁电材料用于线性压电以外的主动振动控制。更一般而言,BES有助于改善当前对微观结构动力学的理解(例如在畴转换过程中),以及它与材料的宏观粘弹性响应之间的关系。

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