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THERMODYNAMIC ANALYSIS FOR COGENERATION CSP-MED CYCLE USING SCO_2 AND SENSIBLE HEAT SOURCES

机译:使用SCO_2和合理的热源热力学分析热电联产CSP-MED循环

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Here we perform a steady state thermodynamic analysis of a cogeneration cycle capable of producing power through a supercritical Carbon Dioxide (sCO;) recompression Brayton cycle and water through a Multi Effect Distillation (MED) plant. The integration considers a demineralized water loop heated by rejected sCO_2. Thus, the performance of the power block is independent of the desalination block. Each block of the system is independently analyzed to identify the operational or design parameters that influence the thermodynamic efficiency and water and power production. For a power block producing 112.6 MW, with a fixed turbine inlet temperature, the pressure ratio (PR) is the most influential variable in order to maximize net power production and thermal efficiency. For the desalination block, producing 2659 m~3/d of water, the last effect temperature (T_N) is the most influential variable for water production. In the integrated cogeneration system, increasing PR beyond the power block optimized value (From PR=3.5 to 3.96) reduces power (from 112.6 to 112.4 MW), but increases water production (from 35 to 40 kg/s), and decreases the specific energy consumption from 29.4 kWh/m~3 of water to 26.5 kWh/m~3 of water.
机译:通过多效蒸馏(MED)植物再压缩布雷顿循环和水;在这里,我们执行能够通过超临界二氧化碳产生动力的热电联产循环的稳态热力学分析(SCO)。整合认为否决sCO_2加热的软化水循环。因此,功率模块的性能不依赖于脱盐块。该系统的每个块独立地进行分析,以确定影响所述热力学效率和水和电力生产的操作或设计参数。用于功率砌块生产112.6 MW,具有固定的涡轮机入口温度,压力比(PR)是为了最大限度地净功率生产和热效率最有影响力的变量。对于脱盐块,从而产生的水2659米〜3 / d,最后效果温度(T_N)是用于水的生产最有影响力的变量。在集成的热电联产系统,增加PR超出电源块优化值(从PR = 3.5〜3.96)减少了功率(从112.6到112.4 MW),但增加水的生产(从35至40千克/秒),并且降低了特定从水29.4千瓦时/米〜3的能量消耗的水26.5千瓦时/米〜3。

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