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中试规模双热式热蒸馏海水淡化系统的能量与熵分析

Energy and Entropy Analyses of a Pilot-Scale Dual Heating HDH Desalination System.

作者信息

Lawal Dahiru U, Abdul Jawad Saad, Sharqawy Mostafa H, Antar Mohamed A

机构信息

Research Center for Membranes and Water Security, King Fahd University of Petroleum and Minerals, Dhahran 31261, Saudi Arabia.

Mechanical Engineering Department, King Fahd University of Petroleum and Minerals, Dhahran 31261, Saudi Arabia.

出版信息

Entropy (Basel). 2021 Sep 30;23(10):1282. doi: 10.3390/e23101282.

Abstract

This study focuses on energy and entropy analysis to theoretically investigate the performance of a pilot scale dual heated humidification-dehumidification (HDH) desalination system. Two cases of HDH systems are considered in the analysis. The first case is a dual heated (DH) cycle consisting of 1.59 kW air heater and 1.42 kW water heater with a heat rate ratio of 0.89 (CAOW-DH-I). Whereas the second case is a dual heated HDH cycle comprising of 1.59 kW air heater and 2.82 kW water heater with a heat rate ratio of 1.77 (CAOW-DH-II). As a first step, mathematical code was developed based on heat and mass transfer and entropy generation within the major components of the system. The code was validated against the experimental data obtained from a pilot scale HDH system and was found to be in a good agreement with the experimental results. Theoretical results revealed that there is an optimal mass flowrate ratio at which GOR is maximized, and entropy generation is minimized. Furthermore, the degree of irreversibility within the humidifier component is low and approaches zero, while the specific entropy generation within other components are relatively high and are of the same order of magnitude. Entropy analysis also showed that the dual heated system with heat rate ratio greater than unity is better than the one with heat rate ratio less than unity.

摘要

本研究聚焦于能量和熵分析,以从理论上探究中试规模双热式加湿-除湿(HDH)海水淡化系统的性能。分析中考虑了两种HDH系统案例。第一种情况是双热(DH)循环,由功率为1.59千瓦的空气加热器和功率为1.42千瓦的水加热器组成,热率比为0.89(CAOW-DH-I)。而第二种情况是双热HDH循环,由功率为1.59千瓦的空气加热器和功率为2.82千瓦的水加热器组成,热率比为1.77(CAOW-DH-II)。第一步,基于系统主要部件内的传热传质和熵产生开发了数学代码。该代码根据从中试规模HDH系统获得的实验数据进行了验证,发现与实验结果吻合良好。理论结果表明,存在一个最佳质量流量比,在此比值下,造水比(GOR)最大化,熵产生最小化。此外,加湿器部件内的不可逆程度较低且趋近于零,而其他部件内的比熵产生相对较高且处于同一数量级。熵分析还表明,热率比大于1的双热系统优于热率比小于1的系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7ce8/8534710/035225d56308/entropy-23-01282-g001.jpg

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