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Numerical Simulations of Natural Convective Heat Transfer in Vertical Concentric and Eccentric Annular Channels

机译:垂直同心和偏心环形通道自然对流换热的数值模拟

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Natural convective heat transfer in a concentric and a highly eccentric, vertical, open ended, annular channel has been investigated numerically. The inner to outer diameter ratio was 0.61, and the height to hydraulic diameter ratio was 18:1. Three heating modes were considered, all having uniform heat flux applied to one or both of the two walls, while the unheated wall was kept adiabatic. The wall temperature distribution, mass flow rate, and midchannel Nusselt number for the case with both walls heated were found to be in excellent agreement with available experimental results. For the same heating conditions, the heat transfer rate in the concentric annular channel was found to be greater than that in the highly eccentric channel, while the mass flow rate was higher in the eccentric channel. A novel finding for the eccentric channel was that the location of maximum velocity was intermediate between the narrow and wide gaps. Another novel observation, which was attributed to radiation effects, was that the fluid temperature in the wide gap region was lower than that of an adiabatic wall. The paper contains additional observations that would be of interest to designers of systems containing annular channels.
机译:已经对同心和高度偏心,垂直,开放式环形通道中的自然对流换热进行了数值研究。内外径比为0.61,高度与水力直径比为18:1。考虑了三种加热模式,所有加热模式均将均匀的热通量施加到两个壁中的一个或两个上,而未加热的壁保持绝热。发现两壁都加热的情况下的壁温分布,质量流率和中通道Nusselt数与可用的实验结果非常吻合。对于相同的加热条件,发现同心环形通道中的传热速率大于高偏心通道中的传热速率,而偏心通道中的质量流量则更高。偏心通道的一个新发现是最大速度的位置介于窄间隙和宽间隙之间。归因于辐射效应的另一个新颖的观察结果是,宽间隙区域中的流体温度低于绝热壁的温度。本文包含其他意见,这对于包含环形通道的系统的设计人员来说将是有意义的。

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