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Optimal discrete distribution of heat flux elements for in-tube laminar forced convection

机译:管内层流强迫对流的热通量元件的最优离散分布

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摘要

A new technique is proposed to enhance the heat transfer from a discretely heated pipe to a developing laminar fluid flow. Unlike the common heating situation where the fluid is continuously heated along the pipe wall with uniform heat flux, the proposed technique consists in heating the fluid with stepwise distributed heat flux, namely by placing insulated segments between the heated segments. Applying this technique, the effective length of the thermal entrance region is enlarged and as a result, the average heat transfer is invigorated. In order to maximize the heating performance, an optimal placement of the insulated segments between the heated segments is calculated according to constructal design. This serves to describe the optimal stepwise distribution of the heat flux. Owing that the total heat load is considered fixed, the maximization of the heating performance translates into the minimization of the peak temperature ('hot spot') of the pipe wall. The analytical results demonstrate that the optimal location of the insulated segments along with the reduction of the peak temperature strongly depend on the Graetz number. It is also shown that for intermediate values of the Graetz number, the peak temperatures are remarkably reduced in response to the optimal placement of the insulated/heated segments.
机译:提出了一种新技术来增强从离散加热管到正在发展的层流流动的热传递。与通常沿着管道壁以均匀的热通量连续加热流体的普通加热情况不同,所提出的技术在于以逐步分布的热通量加热流体,即通过在加热的段之间放置隔热段。应用该技术,增加了热入口区域的有效长度,结果,增强了平均传热。为了最大化加热性能,根据结构设计计算出绝缘段在加热段之间的最佳位置。这用于描述热通量的最佳逐步分布。由于总热负荷被认为是固定的,因此加热性能的最大化转化为管壁峰值温度(“热点”)的最小化。分析结果表明,绝缘段的最佳位置以及峰值温度的降低在很大程度上取决于Graetz数。还显示出,对于格雷茨数的中间值,响应于绝热/加热段的最佳放置,峰值温度显着降低。

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