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Process modelling and techno-economic analysis of natural gas combined cycle integrated with calcium looping

机译:结合钙循环的天然气联合循环的工艺建模和技术经济分析

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Calcium looping (CaL) is promising for large-scale CO2 capture in the power generation and industrial sectors due to the cheap sorbent used and the relatively low energy penalties achieved with this process. Because of the high operating temperatures the heat utilisation is a major advantage of the process, since a significant amount of power can be generated from it. However, this increases its complexity and capital costs. Therefore, not only the energy efficiency performance is important for these cycles, but also the capital costs must be taken into account, i.e. techno-economic analyses are required in order to determine which parameters and configurations are optimal to enhance technology viability in different integration scenarios. In this study the integration scenarios of CaL cycles and natural gas combined cycles (NGCC) are explored. The process models of the NGCC and CaL capture plant are developed to explore the most promising scenarios for NGCC-CaL integration with regards to efficiency penalties. Two scenarios are analysed in detail, and show that the system with heat recovery steam generator (HRSG) before and after the capture plant exhibited better performance of 49.1% efficiency compared with that of 45.7% when only one HRSG is located after the capture plant. However, the techno-economic analyses showed that the more energy efficient case, with two HRSGs, implies relatively higher cost of electricity (COE), 44.1€/MWh, when compared to that of the reference plant system (33.1€/MWh). The predicted cost of CO2 avoided for the case with two HRSGS is 29.3 €/ton CO2.
机译:由于使用了廉价的吸附剂,并且该工艺实现了相对较低的能耗,因此钙循环(CaL)在发电和工业领域中有望用于大规模的CO2捕集。由于工作温度高,热利用是该过程的主要优势,因为可以从中产生大量的电能。但是,这增加了其复杂性和资本成本。因此,不仅能效性能对于这些循环很重要,而且还必须考虑资本成本,即需要进行技术经济分析,以确定哪些参数和配置最适合增强不同集成场景下的技术可行性。 。在这项研究中,探索了CaL循环和天然气联合循环(NGCC)的集成方案。开发了NGCC和CaL捕集工厂的过程模型,以探索关于效率惩罚方面最有希望的NGCC-CaL集成方案。对两种情况进行了详细分析,结果表明,在捕集装置之前和之后装有热回收蒸汽发生器(HRSG)的系统,其效率为49.1%,而在捕集装置之后只有一个HRSG时,效率为45.7%。但是,技术经济分析显示,具有两个HRSG的能源效率更高的案例意味着,与参考电厂系统(33.1€/ ​​MWh)相比,电力成本(COE)相对较高,为44.1€/ ​​MWh。对于使用两个HRSGS的情况,避免的CO2预测成本为29.3€/吨CO2。

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