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Temperature-Responsive Ultrasonic-Wave Engineering Using Thermoresponsive Polymers

机译:温度响应式超声波工程使用热敏聚合物

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摘要

Artificial structures for controlling ultrasonic-waves are attractive for developing superb functions in sensing-imaging techniques. However, the complicated fabrication and fixed design associated with the particular wave limit the scalability. Herein, a versatile-reversible ultrasonic-wave engineering using programmable heating of local areas on thermoresponsive polymers is presented. As an abrupt shift of the elastic modulus occurs at selectively heated zones over the glass transition temperature, the drastic modulus change alters the S0 phase velocity of the Lamb wave within ultrasonic waves passing through the heated regimes. The modified wave propagation results in an active wavelength shift and wave refraction, which enables multifunctional programming of wave propagation pathways and wavefront shapes. Multiple functions such as reduced wavelength, wave steering, energy focusing and bifurcation are implemented in one nylon 6 thermoresponsive polymer, according to predesigned heating shapes. This work demonstrates the capability of temperature-responsive wave engineering in bulk solid media with only a heating configuration.
机译:用于控制超声波的人造结构对于在感测 - 成像技术中开发优化功能的吸引力。然而,与特定波相关的复杂的制造和固定设计限制了可扩展性。这里,提出了一种使用可编程加热的热典型聚合物上的局部区域的多功能可逆超声波工程。由于在玻璃化转变温度的选择性加热区域发生弹性模量的突然移位,因此激烈的模量变化改变通过通过加热的制度的超声波中的羊波的S0相速度。修改的波传播导致有源波长换档和波折射,这使得波传播路径和波前形状的多功能编程。根据预测的加热形状,在一个尼龙6热值聚合物中实现了多种功能,例如减小波长,波动转向,能量聚焦和分叉。该工作展示了散装固体介质中温度响应波工程的能力,只有加热配置。

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