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Comparative thermodynamic performance study for the design of power and desalting cogeneration technologies in Kuwait

机译:科威特电力和脱盐电生电技术设计的比较热力学性能研究

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摘要

This study attempts to answer two questions by developing a thermodynamic mathematical model: which is the optimal energy conversion process, generating power and desalting water independently or coupling power generation with seawater desalination technologies via cogeneration power and desalting plants (CPDP)? How would modifying the plant design affect the performance of a CPDP? Nine different configurations of power and water conversion technologies are modeled and compared with respect to an ideal reversible CPDP using a newly introduced cost-based dimensionless parameter, the power and water gain ratio (PWGR). Results of this study show that producing power using a gas turbine combined cycle (GTCC) and desalting seawater using reverse osmosis (RO) on a stand-alone basis is the most energy efficient for generating power and desalinating water simultaneously. GTCC-RO has the closest PWGR set at 1.470 to the ideal reversible reference plant's 1.529 PWGR. Modifying the number of gas turbines (GT), steam turbines (ST), and multi-effect distillation (MED) units can improve the performance of the combined cycle heat and power (CCHP) reference plant coupled with MED desalination units.
机译:本研究试图通过开发热力学数学模型来回答两个问题:这是最佳能量转换过程,通过热电联产电力和脱盐植物(CPDP)独立地或与海水淡化技术的发电或耦合发电的电力和脱盐水?如何修改工厂设计会影响CPDP的性能?九种不同的电源和水转换技术配置和使用新推出的成本维度参数,功率和水增益比(PWGR)相对于理想的可逆CPDP进行建模和比较。该研究的结果表明,使用燃气轮机联合循环(GTCC)和使用反渗透(RO)在独立基础上产生电力和脱盐海水是用于同时发电电力和脱盐水的最能节能。 GTCC-RO具有最接近的PWGR设置为1.470至理想的可逆参考工厂的1.529 PWGR。改变燃气轮机(GT),蒸汽涡轮机(ST)和多效蒸馏(MED)单元可以提高与MED海水淡化单元的组合循环热量和功率(CCHP)参考装置的性能提高。

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