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Experimentally validated thermal model of thin film NiTi

机译:经过实验验证的NiTi薄膜热模型

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Abstract: The primary focus of this work is to develop a new analytical approach for thermal modeling of Nickel Titanium (NiTi) shape memory alloy membranes undergoing both phase transformation and large deflections. This paper describes a thermal model of a NiTi plate or thin film, including all the modes of heat loss and latent heat dissipation during the phase transformation. This model is used to predict the NiTi temperature during cooling. The results are compared with experiments conducted on a NiTi plate and thin film (3 $mu@m thick), and very good agreement is found. The thermal model is also used to predict the temperature response of a bubble actuator proposed for use in a forced flow environment. Using a 3 mm diameter, 3 $mu@m thickness bubble under forced airflow conditions it is possible to achieve a frequency response faster than 300 Hz. Additional calculations were made to verify the structural stability of the actuator system. Predictions indicated that for specific geometries a pressure of at least 35 kPa can be supported by the NiTi membrane. Deflections of a bubble actuator are shown to be on the order of 10% of its diameter while the strain remains below 4%.!16
机译:摘要:这项工作的主要重点是开发一种新的分析方法,用于对经历相变和大挠曲的镍钛(NiTi)形状记忆合金膜进行热建模。本文介绍了NiTi板或薄膜的热模型,包括相变过程中的所有热损失和潜热耗散模式。该模型用于预测冷却过程中的NiTi温度。将该结果与在NiTi板和薄膜(3μm厚)上进行的实验进行比较,发现非常吻合。该热模型还用于预测建议用于强制流动环境中的气泡执行器的温度响应。在强制气流条件下,使用直径为3 mm,厚度为3μm的气泡,可以获得比300 Hz更快的频率响应。进行了其他计算,以验证执行器系统的结构稳定性。预测表明,对于特定的几何形状,NiTi膜可支持至少35 kPa的压力。气泡执行器的挠度显示为其直径的10%左右,而应变保持在4%以下。!16

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