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Improvement of ultrasonic heat transfer enhancement using acoustical focusing and resonance properties

机译:利用声学聚焦和共振特性改进超声传热

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This paper is aiming to improve the ultrasonic heat transfer enhancement by controlling the sound intensity distribution and constructing an acoustic focusing field, which can reduce energy dissipation and dramatically enhance the local sound intensity of heat transfer surface. Two design criteria are proposed to construct the acoustic focusing field by utilizing acoustic interference and acoustic resonance. Correspondingly, an elliptical acoustic focusing tank is designed and fabricated. Two-dimensional simulation and experimental tests of sound intensity distribution in the elliptical acoustic focusing tank are performed to verify the theoretical conception and design. In addition, the heat transfer coefficients are measured at different locations in the elliptical tank under natural convection, using a square tank as a control. The experimental results show that the elliptical acoustic focusing tank can promote the intensity of the whole sound field, especially the focus region compared with the square tank. The heat transfer coefficient and heat transfer enhancement rate anywhere in the elliptical tank is higher than that in the square tank. The maximum heat transfer enhancement rate of the elliptical tank is 55.3% in natural convection, which is 47.1% higher than that of the square tank under the same condition.
机译:本文旨在通过控制声强分布并建立声聚焦场来改善超声传热,从而减少能量耗散并显着提高传热表面的局部声强。提出了两种设计准则来利用声干扰和声共振来构造声聚焦场。相应地,设计制造了椭圆形声聚焦箱。进行了椭圆声聚焦罐声强分布的二维模拟和实验测试,验证了理论构想和设计。另外,在自然对流条件下,以方形水箱为对照,在椭圆水箱的不同位置测量传热系数。实验结果表明,与方形槽相比,椭圆形声聚焦槽可以提高整个声场的强度,尤其是聚焦区域。椭圆罐中任何地方的传热系数和传热增强率均高于方形罐。在自然对流条件下,椭圆形储罐的最大传热增强率为55.3%,比相同条件下方形储罐的最大传热增强率高47.1%。

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