Rational loads of turbine inlet air absorption-ejector cooling systems

被引:20
作者
Radchenko, Mykola [1 ]
Radchenko, Andrii [1 ]
Radchenko, Roman [1 ]
Kantor, Serhiy [2 ]
Konovalov, Dmytro [1 ]
Kornienko, Victoria [1 ]
机构
[1] Admiral Makarov Natl Univ Shipbldg, Mykolayiv, Ukraine
[2] PJSC Zavod Ekvator, Mykolayiv, Ukraine
关键词
Design refrigeration capacity; current thermal load; turbine; annual fuel saving; CYCLE POWER-PLANT; GAS-TURBINE; AMBIENT-TEMPERATURE; CLIMATIC CONDITIONS; EFFICIENCY ENHANCEMENT; OPERATION EFFICIENCY; FUEL EFFICIENCY; PERFORMANCE; HEAT; CONDENSATION;
D O I
10.1177/09576509211045455
中图分类号
O414.1 [热力学];
学科分类号
摘要
An increase in gas turbine efficiency is possible by inlet air cooling in chillers converting a heat of exhaust gas into refrigeration. In traditional absorption lithium-bromide chillers of a simple cycle an inlet air can be cooled to 15 degrees C. More decrease of turbine inlet air temperature and greater fuel saving accordingly is possible in refrigerant ejector chiller as a simple in design and cheap. The innovative turbine inlet air cooling (TIC) system with absorption chiller as a high-temperature and ejector chiller as a low-temperature stages for cooling air to 7 or 10 degrees C is proposed. Its application in temperate climate provides annual fuel saving by 1.5 to 2 times higher compared with traditional air cooling in absorption chiller to 15 degrees C. A novel universal method of analysing the efficiency of TIC system operation and rational designing has been developed. The method involves the simple numerical simulation based on real input data of site actual climatic conditions. The annual fuel saving is chosen as a primary criterion. The novelty of the methodological approach consists in replacing the current yearly changeable fuel reduction due to TIC by its hour-by-hour summation as an annual fuel saving. The increment of annual fuel saving referred to needed refrigeration capacity of TIC system is used as an indicator to select a design refrigeration capacity. A rational design refrigeration capacity determined by applying the novel methodology allows to decrease the TIC system sizes by 10 to 20% compared with traditional designing issuing from the peaked thermal load during a year. So far as it was developed analytically by introducing quite reasonable criterion indicator and based on the simple summation procedure the method is quite applicable for designing in power and energy.
引用
收藏
页码:450 / 462
页数:13
相关论文
共 50 条
  • [21] Performance improvement of gas turbine combined cycle power plant by dual cooling of the inlet air and turbine coolant using an absorption chiller
    Kwon, Hyun Min
    Kim, Tong Seop
    Sohn, Jeong Lak
    Kang, Do Won
    ENERGY, 2018, 163 : 1050 - 1061
  • [22] Effect of various inlet air cooling methods on gas turbine performance
    Farzaneh-Gord, Mahmood
    Deymi-Dashtebayaz, Mandi
    ENERGY, 2011, 36 (02) : 1196 - 1205
  • [23] Two-Stage Evaporative Inlet Air Gas Turbine Cooling
    Zeitoun, Obida
    ENERGIES, 2021, 14 (05)
  • [24] Exergy, Economic and Environmental Analyses of Gas Turbine Inlet Air Cooling with a Heat Pump Using a Novel System Configuration
    Yazdi, Mohammad Reza Majdi
    Aliehyaei, Mehdi
    Rosen, Marc A.
    SUSTAINABILITY, 2015, 7 (10) : 14259 - 14286
  • [25] Technical and economic evaluation of gas turbine inlet air cooling in a combined cycle power plant
    Tehrani, Seyed Saeed Mostafavi
    Avval, Majid Saffar
    Alvandifar, Negar
    Rabiei, Hossein
    2011 PROCEEDINGS OF THE 3RD CONFERENCE ON THERMAL POWER PLANTS (CTPP), 2011,
  • [26] Increasing the Efficiency of Gas Turbine Inlet Air Cooling in Actual Climatic Conditions of Kazakhstan and Ukraine
    Radchenko, A.
    Radchenko, N.
    Tsoy, A.
    Portnoi, B.
    Kantor, S.
    OIL AND GAS ENGINEERING (OGE-2020), 2020, 2285
  • [27] Turbine Inlet Air Cooling for Industrial and Aero-derivative Gas Turbine in Malaysia Climate
    Nordin, A.
    Salim, D. A.
    Othoman, M. A.
    Kamal, S. N. Omar
    Tam, Danny
    Yusof, M. K. Y.
    2017 INTERNATIONAL CONFERENCE ON ENVIRONMENTAL, INDUSTRIAL AND ENERGY ENGINEERING (EI2E 2017), 2017, 104
  • [28] Enhancement of performance of gas turbine engines by inlet air cooling and cogeneration system
    Najjar, YSH
    APPLIED THERMAL ENGINEERING, 1996, 16 (02) : 163 - 173
  • [29] Impact of the use of a hybrid turbine inlet air cooling system in arid climates
    Al-Ansary, Hany A.
    Orfi, Jamel A.
    Ali, Mohamed E.
    ENERGY CONVERSION AND MANAGEMENT, 2013, 75 : 214 - 223
  • [30] Assessment of Power Augmentation from Gas Turbine Power Plants Using Different Inlet Air Cooling Systems
    Jaber, Q. M.
    Jaber, J. O.
    Khawaldah, M. A.
    JORDAN JOURNAL OF MECHANICAL AND INDUSTRIAL ENGINEERING, 2007, 1 (01) : 7 - 15