首页> 外文期刊>Iranian Journal of Science and Technology, Transactions of Mechanical Engineering >Exergy Analysis and Optimization of Multi-effect Distillation with Thermal Vapor Compression System of Bandar Abbas Thermal Power Plant Using Genetic Algorithm
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Exergy Analysis and Optimization of Multi-effect Distillation with Thermal Vapor Compression System of Bandar Abbas Thermal Power Plant Using Genetic Algorithm

机译:基于遗传算法的Bandar ABBAS热电厂热蒸汽压缩系统的多效蒸馏优化

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Multi-effect distillation desalination system with thermal vapor compression is one of the systems of producing fresh water based on distillation desalination. This type of desalination system is one of the most appropriate and economic types of desalination systems for low to high capacities of seawater and brackish water in which evaporation and distillation have occurred in a vacuum and in temperature below 70 degrees C. This research provides a mathematical model in the steady-state conditions for multi-effect distillation desalination system with thermal vapor compression in Bandar Abbas thermal power plant in south of Iran. The genetic algorithm is used for maximizing the produced fresh water and minimizing total exergy destruction rate. Exergy analysis shows that the thermo-compressor and effects are the main sources of exergy destruction in the system (more than 80%). The actual operating data in summer and winter were used for the exergy destruction study. The results show that the exergy destruction in winter is more than summer. Parametric analysis for studying the effects of key parameters shows that increasing the top brine temperature leads to increase in the total exergy destruction of the system. The optimization of the system with two-target genetic algorithm causes distillate production to increase by 16.62%, and the total exergy destruction rate decreases by 3.58%.
机译:具有热蒸汽压缩的多效蒸馏脱盐系统是基于蒸馏水的淡水生产的系统之一。这种类型的海水淡化系统是低于海水和咸水的高容量的最合适和经济类型的脱盐系统之一,其中蒸发和蒸馏在真空和低于70摄氏度的温度下。该研究提供了数学伊朗南部班达ABBAS热电厂热蒸汽压缩多效蒸馏水系统稳态条件下的模型。遗传算法用于最大化生产的淡水,最大限度地减少总漏洞的破坏率。 Deergy分析表明,热压缩机和效果是系统中漏洞破坏的主要源(超过80%)。夏季和冬季的实际运营数据用于漏洞的破坏研究。结果表明,冬季的暴风破坏是夏天。用于研究关键参数效果的参数分析表明,增加顶部盐水温度导致系统的总漏洞造成的增加。具有双靶遗传算法的系统的优化使馏分产量增加16.62%,并且总漏洞破坏率降低了3.58%。

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