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Design, experiment, and verification of a heating and insulation structure for the piezoelectric stack

机译:压电叠层加热和绝缘结构的设计,实验和验证

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摘要

In the low-temperature environment, temperature reduction affects the properties and actuation performance of the piezoelectric stack. To solve this problem, a practical and effective heating and insulation structure, based on the working characteristics of the piezoelectric stack, is proposed in this article. Thermal conductivity models of the piezoelectric stack under two heating modes-whole heating and local heating-are developed and validated by finite element simulation analysis. The heating and insulation structure has been built according to the theoretical model, and the experimental test is conducted to measure the temperature and property variation of the piezoelectric stack, as well as its actuation performance with ambient temperature drop. The experimental results show that the theoretical and simulation results are consistent with the experimental results, as the maximum temperature difference between them is 4.3 degrees C, which indicates the correctness and accuracy of the theoretical and finite element models. Besides, the properties and the actuation performance are almost unchanged within the range from 10 degrees C to -70 degrees C, which verifies the effectiveness and feasibility of the heating and insulation structure. Consequently, this structure can be redesigned according to the principles proposed in this article, and widely used in protecting piezoelectric stacks of different sizes and low-temperature environments; the application range of the piezoelectric stack can also be extended to lower temperatures.
机译:在低温环境中,温度降低会影响压电堆的性能和驱动性能。为了解决这个问题,本文提出了一种基于压电堆的工作特性的实用有效的加热和绝缘结构。通过有限元仿真分析,建立并验证了压电堆在全加热和局部加热两种加热方式下的导热系数模型。根据理论模型建立了加热和绝缘结构,并进行了实验测试,以测量压电叠层的温度和性能变化,以及其随环境温度下降的驱动性能。实验结果表明,理论和仿真结果与实验结果相符,两者之间的最大温差为4.3摄氏度,这表明理论模型和有限元模型的正确性和准确性。此外,其性质和致动性能在10℃至-70℃的范围内几乎不变,这证明了加热和隔热结构的有效性和可行性。因此,可以根据本文提出的原理重新设计该结构,并广泛用于保护不同尺寸和低温环境的压电堆;压电叠层的应用范围也可以扩展到更低的温度。

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