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Coupling of electroelastic dynamics and direct contact ultrasonic drying formulation for annular piezoelectric bimorph transducers

机译:电弹性动力学和直接接触超声干燥配制环形压电双晶体传感器的耦合

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摘要

A newly developed technique for drying clothes without thermal energy has been developed through the utilization of ultrasonic vibrations from piezoelectric transducers. The novel technique incorporates the actuation of a thin stainless steel disk in contact with wet fabric via annular piezoelectric rings, where water in the liquid form is atomized, transported through microchannels in the disk, and ejected as a mist. In such a system, resonance matching between the actuation portion of the transducer and the portion contacting fabric must be realized, with theoretical results from the developed electromechanical model showing a reduction in energy consumption by 50% when resonance matching is achieved. The electrically coupled distributed parameter model for an annular bimorph piezoelectric transducer is developed for optimization of ultrasonic drying technology. The thickness mode vibrations are shown to dominate the behavior of the system, where the analytically developed model can be optimized to increase the output acceleration of the transducer, thus increasing drying performance. The electromechanical equation developed will be connected to the drying rates of fabrics in contact with said vibrations, where the novelty of the coupled equations and its description of the physics of ultrasonic drying will be discussed.
机译:通过利用压电传感器的超声波振动,开发了一种用于干燥衣物而没有热能的新开发的干燥技术。该新技术包括通过环形压电环与湿织物接触的薄不锈钢盘的致动,其中液体形式的水被雾化,通过盘中的微通道输送,并作为雾喷射。在这种系统中,必须实现换能器的致动部分与部分接触织物之间的谐振匹配,并且当达到共振匹配时,具有显示出的机电模型的理论结果,显示出谐振匹配时能量消耗的降低50%。开发了环形双芯压电换能器的电耦合分布式参数模型,用于优化超声干燥技术。显示厚度模式振动以占据系统的行为,其中可以优化分析开发的模型以增加换能器的输出加速度,从而提高干燥性能。开发的机电方程将与与所述振动接触的织物的干燥速率连接,其中耦合方程的新颖性及其对超声干燥物理学的描述。

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