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Measurement of thermal boundary resistance between water and superhydrophobic surfaces by the bi-directional differential 3co method

机译:双向差分3CO方法测量水和超疏水表面之间的热抗辐射电阻

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摘要

This study describes a new approach for measuring thermal boundary resistance between water and superhydrophobic surfaces with a thin air layer in between. This new bi-directional differential 3ω method was used to detect the small thermal boundary resistance due to superhydrophobicity. The superhydrophobic surface was prepared by spin-coating a commercial colloidal solution (Glaco Mirror Coat Zero) on the borosilicate glass substrate with a thin film-heater line for the 3ω measurements. The surface wettability was changed from superhydrophobic to superhydrophilic by plasma treatment of the coating surface to obtain the reference state without the air layer (thermal boundary resistance), required for the differential measurement. The obtained thermal boundary resistance was 7.5 × 10~(-6) [(K·m~2)/W], and its equivalent air layer thickness was 0.2 μm and was consistent with the surface topology observed using an atomic force microscope. This measurement technique is considered useful for characterizing the thermal resistance of superhydrophobic structures used in heat transfer applications, such as phase-change heat transfer surfaces and microchannel heat exchangers.
机译:该研究描述了一种用于测量水和超疏水表面之间具有薄空气层之间的热辐射电阻的新方法。这种新的双向差分3Ω方法用于检测由于超疏水引起的小的热界电阻。通过将硼硅酸盐玻璃基板上的商业胶体溶液(Glaco镜面涂层零)旋涂,用薄膜 - 加热线旋转,以进行3Ω测量来制备超疏水表面。通过涂层表面的等离子体处理通过超细毛细管改变表面润湿性,以获得差分测量所需的没有空气层(热界电阻)的参考状态。所获得的热抗线电阻为7.5×10〜(-6)[(k·m〜2)/ w],其等效的空气层厚度为0.2μm,并且与使用原子力显微镜观察到的表面拓扑一致。该测量技术被认为是用于表征传热应用中使用的超疏水结构的热阻的有用,例如相变传热表面和微通道热交换器。

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