利用废气操作蒸气吸收机提高燃气轮机功率

Hemex Premjiyani, Arunesh Dwivedi, Hiren Rana
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摘要

以恒定速度运行的工业燃气轮机(GT)是一种恒定体积流量燃烧设备。由于空气的比容与温度成正比,因此在空气环境温度较低时,空气密度的增加会导致更高的空气质量流量。因此,在相同体积的燃气轮机空间内,会有更多的空气通过。因此,燃气轮机的功率输出会随着空气质量流量的增加而成正比增加。对于全年以温暖潮湿月份为主的地理区域,在这些月份会出现显著的功率损失,并且在功率输出降低的情况下会燃烧更多昂贵的燃料。燃气轮机进气冷却技术是提高 GT 输出的有效选择。使用蒸汽吸收机(VAM)进行进气空气调节是提高燃气轮机功率的创新选择之一。与其他系统相比,使用 VAM 进行燃气轮机进气空气调节的优势在于它可以利用废热运行。许多燃气轮机,特别是天然气泵站,在运行时都没有热回收蒸汽发生器 (HRSG) 或热回收选项。在这些系统中,宝贵的热能随废气排出。本文展示了如何利用 GT 废气余热来提高自身发电量。在这项研究中,选择了一种基于烟气的汽体吸收装置,用于冷却 26 兆瓦燃气轮机的进气,该燃气轮机用于驱动天然气泵站的增压压缩机。我们计算了 VAM 的能力,以达到所需的冷却效果。本文还估算了进气空气调节预期可提高的 GT 功率。
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Power Augmentation of Gas Turbine Using Exhaust Flue Gas Operated Vapor Absorption Machine
Industrial gas turbines (GT) that operate at constant speed are constant-volume-flow combustion machines. As the specific volume of air is directly proportional to the temperature, an increase in air density results in a higher air mass flow rate at low air ambient temperatures. This results more mass of air is now passes through same volume gas turbine space. Consequently, the gas turbine power output increases proportionally with the increase in air mass flow rate. For geographic regions where warm and humid months are predominant throughout the year, significant power loss occurs during these months, and a higher rate of expensive fuel is fired at reduced power output. A gas turbine inlet air cooling technique is a useful option to enhance GT output. One of the innovative options for power augmentation of gas turbine is inlet air conditioning using a vapor absorption machine (VAM). Using VAM for GT intake air conditioning has the advantage over other systems in that it can be operated from waste heat. Many gas turbine machines, particularly natural gas pumping stations, are operated without heat recovery steam generator (HRSG) or heat recovery option. Valuable heat energy is escaped with exhaust flue gas in these systems. This paper demonstrates how GT exhaust waste heat can be utilized for its own power generation enhancement. In this study, a flue gas-based vapor absorption machine is selected for cooling the inlet air of a 26 MW gas turbine, which is used to drive the booster compressor of a natural gas pumping station. The capacity of the VAM for the required cooling effect has been calculated. The expected GT power enhancement from intake air gas conditioning has also been estimated in this paper.
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