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Time-dependent study of boiling heat transfer coefficient in a vertical minichannel

机译:垂直迷你宣传中沸腾传热系数的时间依赖性研究

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Purpose - The purpose of this paper is to determine the time-dependent heat transfer coefficient during FC-72 flow boiling in a 1.7-mm-deep vertical and asymmetrically heated minichannel. Design/methodology/approach - The temperature of the minichannel heated wall was recorded continuously with the use of thermocouples. The heat transfer coefficients for the subcooled and saturated boiling regions at the heated wall-fluid contact surface were calculated from the Robin boundary condition. Both the wall and fluid temperatures were obtained from the solution of the inverse nonstationary problems in two adjacent domains: the heated wall and flowing fluid. The FEM with Trefftz-type basis functions was applied to solve the inverse problem. Findings - The obtained time-dependent heat transfer coefficient in subcooled boiling achieved rather low values, whereas in saturated boiling, the coefficient was the highest at the channel inlet. The boiling curves were plotted to illustrate the results. Practical implications - The results of experiments are the best source of information for the design of minichannel cooling systems used for thermoregulation of components and heat exchangers. High-tech minichannel heat exchangers are applied in various industrial applications as microelectronics devices, gas turbines, internal combustion engines, nuclear reactors, X-ray sources and organic rankine cycle (ORC) modules. Originality/value In the study, the Trefftz functions for the nonstationary Fourier-Kirchhoff equation with the factor describing void fraction were determined and then used to construct the time-dependent basis functions in FEM.
机译:目的 - 本文的目的是确定在1.7mm-深的垂直和不对称的MinioCannel中的Fc-72流量沸腾期间的时间依赖的传热系数。设计/方法/方法 - 使用热电偶连续记录迷你笼壁的温度。从罗宾边界条件计算加热壁流体接触表面处的过冷和饱和沸点的传热系数。壁和流体温度都是从两个相邻域中的逆非营养问题的溶液中获得:加热的壁和流动的流体。采用带Trefftz型基本功能的FEM来解决逆问题。结果 - 所获得的沸腾沸腾的时间依赖传热系数实现了相当低的值,而在饱和沸腾中,系数在通道入口处最高。绘制沸腾曲线以说明结果。实际意义 - 实验结果是用于设计用于元件和热交换器的热调节的MinioCannel冷却系统的最佳信息来源。高科技迷你沟热交换器应用于各种工业应用,作为微电子装置,燃气轮机,内燃机,核反应堆,X射线源和有机朗肯循环(ORC)模块。研究中的原创性/值,确定具有描述空隙分数的因子的非间断傅立叶-Kirchhoff方程的Trefftz函数,然后用于构建有限元中的时间依赖性基函数。

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