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CO_2 mixtures as innovative working fluid in power cycles applied to solar plants. Techno-economic assessment

机译:CO_2混合物作为电力循环中的创新工作流体适用于太阳能植物。技术经济评估

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This paper discusses the adoption of CO2 mixtures for improving the thermal-to-power efficiency conversion in solar tower plants and reducing the Levelized Cost of Electricity. Two different fluids are considered for blending the CO2: N2O4 and TiCl4. The main advantage of the innovative mixtures relies in a higher critical temperature with respect to pure CO2, which allows condensing cycles even at relatively high ambient temperatures typical of solar plants locations. Thermodynamic results show that the innovative cycles can achieve conversion efficiencies as high as 43% and 50% at 550 degrees C and 700 degrees C maximum temperature respectively, outperforming the reference CO2 cycle by 2 points percent. In addition, the simpler lay-out and the liquid compression reduce the power block capital costs below 700 $/kW. Detailed solar plant annual simulation is performed to assess the overall solar to electricity efficiency which can be around 21% for the innovative fluid, corresponding to 10% increase with respect to state-of-the-art solar plant.The higher performance and lower costs lead to a Levelized Cost of Electricity reduction of 10% with respect to conventional steam cycle power block.
机译:本文讨论了采用二氧化碳混合物,以提高太阳能塔厂的热电效率转换,降低电力调整性的电力。考虑两种不同的流体用于混合CO 2:N2O4和TiCl4。创新混合物的主要优点在于纯二氧化碳的临界温度依赖于较高的临界温度,即使在典型的太阳能厂位置的相对高的环境温度下,也允许冷凝循环。热力学结果表明,创新的循环分别可以分别在550摄氏度和700摄氏度的最高温度下实现高达43%和50%的转化效率,优于参考CO2循环百分点。此外,更简单的铺设和液体压缩降低了低于700美元/ kW的电源块资本成本。进行了详细的太阳能厂年仿真,以评估整体太阳能到电力效率,可为创新液体约为21%,相应于最先进的太阳能厂增加10%。成本较高,成本较低导致传统蒸汽循环动力块相对于传统蒸汽循环动力块的10%的电力降低成本。

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