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Use of steam jet booster as an integration strategy to operate a natural gas combined cycle with post-combustion CO_2 capture at part-load

机译:使用蒸汽喷射增压器作为整合策略,以天然气组合循环的方式进行部分负载下燃烧后的CO_2捕集

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摘要

This paper aims to evaluate the integration of the steam jet booster in a natural gas combined cycle with CO2capture at low part-load operation. The steam ejector takes a high pressure motive steam flows in a supersonic nozzle while dragging a low pressure steam which comes from the crossover. Both flows mix into one at fixed pressure of 3.5 bar and sent to the reboiler. The results are compared with two integration alternatives: uncontrolled and controlled steam extraction control. Uncontrolled steam extraction provides better part-load performance than controlled. However, with sliding pressure, at 42.3% gas turbine load the low pressure steam turbine operates at 27% of its capacity compared with 66% when the energy plant operates without capture, this imposes a potential risk to the integrity of the turbine. When the steam ejector is integrated, there is no significant improvement in the efficiency compared with sliding pressure strategy. However, the used capacity of the low pressure steam turbine increases from 27% to 42.8%. Therefore, the use of the steam ejector represents a solution to avoid severe damage to the low pressure steam turbine, thus bringing more flexibility, and ensure that steam extraction will not impose any constraint to the energy plant with CO2capture at part-load.
机译:本文旨在评估在低部分负荷运行下,蒸汽喷射增压器在天然气联合循环中与二氧化碳捕获的集成。蒸汽喷射器使高压动力蒸汽在超音速喷嘴中流动,同时拖动来自分流器的低压蒸汽。两种流体在3.5 bar的固​​定压力下混合成一股,并送至再沸器。将结果与两种替代方案进行比较:不受控制和受控制的蒸汽抽出控制。不受控制的蒸汽抽提提供了比受控更好的部分负荷性能。但是,在滑动压力下,燃气轮机负荷为42.3%时,低压蒸汽轮机以其容量的27%运转,而能源工厂在没有捕获的情况下运行时为66%,这对涡轮机的完整性构成潜在风险。当集成蒸汽喷射器时,与滑动压力策略相比,效率没有显着提高。但是,低压蒸汽轮机的使用容量从27%增加到42.8%。因此,使用蒸汽喷射器是一种解决方案,可避免对低压蒸汽轮机造成严重损害,从而带来更大的灵活性,并确保蒸汽提取不会对在部分负荷下捕获CO2的能源工厂施加任何约束。

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