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首页> 外文期刊>International Journal of Thermal Sciences >Second-law-based performance evaluation of cooling towers and evaporative heat exchangers
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Second-law-based performance evaluation of cooling towers and evaporative heat exchangers

机译:基于第二定律的冷却塔和蒸发式换热器性能评估

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摘要

In this paper, we present thermodynamic analysis of counter flow wet cooling towers and evaporative heat exchangers using both the first and second laws of thermodynamics. A parametric study is carried out to determine the variation of second-law efficiency as well as exergy destruction as a function of various input parameters such as inlet wet bulb temperature. Irreversible losses are determined by applying an exergy balance on each of the systems investigated. In this regard, an engineering equation solver (EES) program, with built-in functions for most thermodynamic and transport properties, is used. The concept of total exergy as the sum of thermomechanical and chemical parts is employed in calculating the flow exergies for air and water vapor mixtures. For the different input variables investigated, efficiencies were, almost always, seen to increase or decrease monotonically. We notice that an increase in the inlet wet bulb temperature invariably increases the second-law efficiency of all the heat exchangers. Also, it is shown that Bejan's definition of second-law efficiency is not limited in evaluating performance. Furthermore, it is understood that the variation in the dead state does not significantly affect the overall efficiency of the system.
机译:在本文中,我们使用第一和第二热力学定律对逆流湿式冷却塔和蒸发式热交换器进行了热力学分析。进行了参数研究,以确定第二定律效率的变化以及火用的破坏与各种输入参数(例如,入口湿球温度)的函数关系。不可逆损失是通过在每个研究的系统上应用火用平衡来确定的。在这方面,使用具有大多数热力学和传输特性的内置函数的工程方程求解器(EES)程序。用总热能的概念作为热机械和化学部分的总和来计算空气和水蒸气混合物的流能。对于调查的不同输入变量,几乎总是看到效率单调增加或减少。我们注意到,入口湿球温度的升高总是会提高所有热交换器的二次律效率。此外,还显示出Bejan对第二定律效率的定义在评估性能方面不受限制。此外,可以理解的是,死区的变化不会显着影响系统的整体效率。

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