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Thermodynamic evaluation of the Kalina split-cycle concepts for waste heat recovery applications

机译:用于废热回收应用的Kalina分裂循环概念的热力学评估

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摘要

The Kalina split-cycle is a thermodynamic process for converting thermal energy into electrical power. It uses an ammonia–water mixture as a working fluid (like a conventional Kalina cycle) and has a varying ammonia concentration during the pre-heating and evaporation steps. This second feature results in an improved match between the heat source and working fluid temperature profiles, decreasing the entropy generation in the heat recovery system. The present work compares the thermodynamic performance of this power cycle with the conventional Kalina process, and investigates the impact of varying boundary conditions by conducting an exergy analysis. The design parameters of each configuration were determined by performing a multi-variable optimisation. The results indicate that the Kalina split-cycle with reheat presents an exergetic efficiency by 2.8% points higher than a reference Kalina cycle with reheat, and by 4.3% points without reheat. The cycle efficiency varies by 14% points for a variation of the exhaust gas temperature of 100 °C, and by 1% point for a cold water temperature variation of 30 °C. This analysis also pinpoints the large irreversibilities in the low-pressure turbine and condenser, and indicates a reduction of the exergy destruction by about 23% in the heat recovery system compared to the baseline cycle.
机译:Kalina分体式循环是一种热力学过程,用于将热能转换为电能。它使用氨水混合物作为工作流体(类似于传统的卡利纳循环),并且在预热和蒸发步骤中氨的浓度不断变化。第二个特点是改善了热源和工作流体温度曲线之间的匹配,减少了热回收系统中的熵产生。本工作将这种动力循环的热力学性能与传统的Kalina工艺进行了比较,并通过进行了火用分析来研究边界条件变化的影响。通过执行多变量优化来确定每种配置的设计参数。结果表明,带再热的Kalina分流循环的能效比带回热的参考Kalina循环高出2.8%,而没有再热则提高4.3%。对于100°C的排气温度变化,循环效率变化14%,而对于30°C的冷水温度变化,循环效率变化1%。该分析还指出了低压涡轮机和冷凝器中的大不可逆性,并表明与基准循环相比,热回收系统的火用破坏减少了约23%。

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