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Control of exit flow and thermal conditions using two-layered thin films supported by flexible complex seals

机译:使用由柔性复合密封件支撑的两层薄膜控制出口流量和热条件

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This work considers flow and heat transfer inside an oscillatory disturbed two-layered thin film channel supported by flexible complex seals in the presence of suspended ultrafine particles. The governing continuity, momentum and energy equations for both layers are non-dimensionalized and categorized for small Reynolds numbers and negligible axial conduction. The deformation of the supporting seals is linearly related to both the pressure difference across the two layers and the upper plate's temperature based on the theory of the linear elasticity and the principle of the volumetric thermal expansion applied to the closed voids within the seals. It is found that the flow rate and heat transfer in the main thin film channel can be increased by an increase in the softness of the seals, the thermal squeezing parameter, the thermal dispersion effect and the total thickness of two-layered thin film. However, they decrease as the dimensionless thermal expansion coefficient of the seals and the squeezing number of the main layer increase. Both the increase in thermal dispersion and in the thermal squeezing parameter for the secondary layer are found to increase the stability of the intermediate plate. Furthermore, the two-layered thin film channel is found to be more stable when the secondary flow is free of pulsations or it has relatively a large pulsating frequency. Finally, the proposed two-layered thin film supported by flexible complex seals unlike other controlling systems does not require additional mechanical control or external cooling devices.
机译:这项工作考虑了在悬浮超细颗粒的存在下,由柔性复合密封件支撑的振荡扰动的两层薄膜通道内部的流动和传热。两层的控制连续性,动量和能量方程都是无量纲的,并且归因于较小的雷诺数和可忽略的轴向传导。基于线性弹性理论和施加到密封件内封闭空隙的体积热膨胀原理,支撑密封件的变形与两层压力差和上板温度线性相关。已经发现,通过增加密封件的柔软性,热挤压参数,热分散效果和两层薄膜的总厚度,可以增加主薄膜通道中的流速和传​​热。但是,随着密封件的无量纲热膨胀系数和主层的挤压数增加,它们减小。发现第二层的热分散性和热挤压参数的增加都增加了中间板的稳定性。此外,发现当次级流没有脉动或者其具有相对大的脉动频率时,两层薄膜通道更稳定。最后,与其他控制系统不同,拟议的由柔性复合密封件支撑的两层薄膜不需要其他机械控制或外部冷却装置。

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