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CO2 emission reduction from natural gas power stations using a precipitating solvent absorption process

机译:利用沉淀溶剂吸收工艺减少天然气发电站的二氧化碳排放量

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There has been a rapid increase in the use of natural gas for power generation based on gas turbine technology which elevates the importance of carbon dioxide (CO2) capture technology to reduce CO2 emissions from gas turbine based power stations. The low content of CO2 in the gas turbine exhaust results in low rates of CO2 absorption and larger absorption equipment when compared to studies done on coal fired power stations. Furthermore the high oxygen (O-2) content in the exhaust gas adversely affects the solvent stability, particularly for the traditional amine based solvents. This paper describes how exhaust gas recirculation (EGR) along with CO2CRC's low cost "UNO MK 3" precipitating potassium carbonate (K2CO3) process can overcome the challenges of CO2 capture from gas turbine power stations. To further bring down the energy requirements of the capture process, heat integration of the UNO MIC 3 process with power generation process is carried out. An economic analysis of the various retrofit options is performed. The current study shows that in the case of retrofitting the UNO MK 3 process to a natural gas combined cycle (NGCC), the use of EGR can reduce the energy penalty of CO2 capture by 15%, whilst a reduction of up to 25% can be achieved with the heat integration strategies described. Significantly the study shows that converting an existing open cycle gas turbine (OCGT) to a combined cycle with steam generation along with retrofitting CO2 capture presents a different steam cycle design for the maximum power output from the combined cycle with CO2 capture. Such a conversion actually produces more power and offers an alternative low emission retrofit pathway for gas fired power. Cost analysis shows that inclusion of the UNO MK 3 CO2 capture process with EGR to an existing NGCC is expected to increase the cost of electricity (CUE) by 20%. However, retrofit/repowering of an underutilised or peaking OCGT station with the inclusion of CO2 capture can reduce the CUE as well as produce low emission power. This is achieved by increasing the load factor and incorporating a purpose built steam generation cycle
机译:基于燃气轮机技术的天然气发电的使用迅速增加,这提高了二氧化碳(CO2)捕集技术的重要性,以减少来自燃气轮机发电站的二氧化碳排放。与在燃煤电站上进行的研究相比,燃气轮机排气中的CO2含量低,导致CO2吸收率低,吸收设备更大。此外,废气中的高氧(O-2)含量会对溶剂稳定性产生不利影响,尤其是对于传统的胺基溶剂而言。本文介绍了废气再循环(EGR)以及CO2CRC的低成本“ UNO MK 3”沉淀碳酸钾(K2CO3)工艺如何克服燃气轮机发电站捕集CO2的挑战。为了进一步降低捕获过程的能源需求,UNO MIC 3过程与发电过程进行了热集成。对各种改造方案进行了经济分析。当前的研究表明,在将UNO MK 3工艺改造为天然气联合循环(NGCC)的情况下,使用EGR可将捕获二氧化碳的能量损失减少15%,而最多可将二氧化碳的排放减少25%通过描述的热集成策略可以实现。有意义的是,研究表明,将现有的开放式燃气轮机(OCGT)转换为带蒸汽产生的联合循环以及改造后的CO2捕集,提出了一种不同的蒸汽循环设计,以实现带有CO2捕获的联合循环的最大功率输出。这种转换实际上会产生更多的功率,并为燃气发电提供替代性的低排放改造途径。成本分析表明,将EGR的UNO MK 3 CO2捕集工艺与现有NGCC结合使用,预计将使电成本(CUE)增加20%。但是,对未充分利用或达到峰值的OCGT站进行改造/重新加电(包括二氧化碳捕集)可以降低CUE并产生低排放功率。这可以通过增加负载系数并结合特定的蒸汽产生循环来实现

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