基于多级压缩质量存储过程的直接回收燃气轮机循环的热力学分析

IF 2.6 3区 工程技术 Q2 ENGINEERING, MECHANICAL International Journal of Heat and Fluid Flow Pub Date : 2024-08-31 DOI:10.1016/j.ijheatfluidflow.2024.109555
Enhui Sun , Xiangren Wang , Qiukai Zhang , Feng Chen , Jinliang Xu , Yanfeng Liu
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引用次数: 0

摘要

由于排气温度高,燃气轮机通常采用联合循环;然而,复杂的底部循环往往限制了系统的灵活性。在这项研究中,我们探讨了燃气轮机循环中利用排气热量的不同方法,发现底部循环的余热吸收效率和压缩过程的功耗是影响热量回收的主要因素。越接近等温压缩,压缩过程的功耗就越低。中间冷却是实现等温压缩的一种典型方法,主要受到压力下降的限制。为了解决这一制约因素,我们开发了一种新方法来耦合多级压缩质量存储过程,从而大大减少了压力损失。在中间冷却过程中,压力下降范围为 0.01-0.1 兆帕,而在这种新方法中,传热过程中的压力下降为 0.001 兆帕。这是一个理论上的突破。同时,与单级中冷循环相比,耦合多级压缩质量存储过程使循环的热效率提高了 1.34-4.5%,与两级中冷循环相比,提高了 2.64-8%。因此,这项研究为利用直接回收技术构建燃气轮机循环奠定了基础。
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Thermodynamic analysis of a gas turbine cycle with direct recuperation based on a multistage compressed mass storage process

Gas turbines typically employ combined cycles owing to high exhaust temperature; however, the complex bottoming cycle often constrains system flexibility. In this study, we explored the different methods for utilizing exhaust heat in gas turbine cycles, and found that the residual heat absorption efficiency of the bottoming cycle and power consumption of the compression process were the main factors affecting heat recovery. The closer the approach to isothermal compression, the lower the power consumption of the compression process. Intercooling, a typical approach toward isothermal compression, was primarily constrained by declines in pressure. To address this constraint, we developed a new approach toward coupling the multistage compressed mass storage process, significantly reducing losses in pressure. The resultant decline in pressure during intercooling ranged from 0.01–0.1 MPa, while in this new approach, the decline during heat transfer was < 0.001 MPa. This is a theoretical breakthrough. Meanwhile, coupling the multistage compressed mass storage process increased the thermal efficiency of the cycle by 1.34–4.5 % compared to the one-stage intercooling cycle, and by 2.64–8 % compared to the two-stage intercooling cycle. This study thus provided a foundation for constructing gas turbine cycles using direct recuperation.

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来源期刊
International Journal of Heat and Fluid Flow
International Journal of Heat and Fluid Flow 工程技术-工程:机械
CiteScore
5.00
自引率
7.70%
发文量
131
审稿时长
33 days
期刊介绍: The International Journal of Heat and Fluid Flow welcomes high-quality original contributions on experimental, computational, and physical aspects of convective heat transfer and fluid dynamics relevant to engineering or the environment, including multiphase and microscale flows. Papers reporting the application of these disciplines to design and development, with emphasis on new technological fields, are also welcomed. Some of these new fields include microscale electronic and mechanical systems; medical and biological systems; and thermal and flow control in both the internal and external environment.
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