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    Thermodynamics Cycle Analysis, Pressure Loss, and Heat Transfer Assessment of a Recuperative System for Aero Engines

    Source: Journal of Engineering for Gas Turbines and Power:;2015:;volume( 137 ):;issue: 004::page 41205
    Author:
    Goulas, A.
    ,
    Donnerhack, S.
    ,
    Flouros, M.
    ,
    Misirlis, D.
    ,
    Vlahostergios, Z.
    ,
    Yakinthos, K.
    DOI: 10.1115/1.4028584
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Aiming in the direction of designing more efficient aeroengines, various concepts have been developed in recent years, among which is the concept of an intercooled and recuperative aeroengine. Particularly, in the area of recuperation, MTU Aero Engines has been driving research activities in the last decade. This concept is based on the use of a system of heat exchangers (HEXs) mounted inside the hotgas exhaust nozzle (recuperator). Through the operation of the system of HEXs, the heat from the exhaust gas downstream the LP turbine of the jet engine is driven back to the combustion chamber. Thus, the preheated air enters the engine combustion chamber with increased enthalpy, providing improved combustion and by consequence, increased fuel economy and lowlevel emissions. If additionally an intercooler is placed between the compressor stages of the aeroengine, the compressed air is then cooled by the intercooler; thus, less compression work is required to reach the compressor target pressure. In this paper, an overall assessment of the system is presented with particular focus on the recuperative system and the HEXs mounted into the aeroengine's exhaust nozzle. The herein presented results were based on the combined use of CFD computations, experimental measurements, and thermodynamic cycle analysis. They focus on the effects of total pressure losses and HEX efficiency on the aeroengine performance especially the engine's overall efficiency and the specific fuel consumption (SFC). More specifically, two different hotgas exhaust nozzle configurations incorporating modifications in the system of HEXs are examined. The results show that significant improvements can be achieved in overall efficiency and SFC, hence contributing to the reduction of CO2 and NOx emissions. The design of a more sophisticated recuperation system can lead to further improvements in the aeroengine efficiency in the reduction of fuel consumption. This work is part of the European funded research program Low Emissions Core engine Technologies (LEMCOTEC).
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      Thermodynamics Cycle Analysis, Pressure Loss, and Heat Transfer Assessment of a Recuperative System for Aero Engines

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    contributor authorGoulas, A.
    contributor authorDonnerhack, S.
    contributor authorFlouros, M.
    contributor authorMisirlis, D.
    contributor authorVlahostergios, Z.
    contributor authorYakinthos, K.
    date accessioned2017-05-09T01:17:44Z
    date available2017-05-09T01:17:44Z
    date issued2015
    identifier issn1528-8919
    identifier othergtp_137_04_041205.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/157920
    description abstractAiming in the direction of designing more efficient aeroengines, various concepts have been developed in recent years, among which is the concept of an intercooled and recuperative aeroengine. Particularly, in the area of recuperation, MTU Aero Engines has been driving research activities in the last decade. This concept is based on the use of a system of heat exchangers (HEXs) mounted inside the hotgas exhaust nozzle (recuperator). Through the operation of the system of HEXs, the heat from the exhaust gas downstream the LP turbine of the jet engine is driven back to the combustion chamber. Thus, the preheated air enters the engine combustion chamber with increased enthalpy, providing improved combustion and by consequence, increased fuel economy and lowlevel emissions. If additionally an intercooler is placed between the compressor stages of the aeroengine, the compressed air is then cooled by the intercooler; thus, less compression work is required to reach the compressor target pressure. In this paper, an overall assessment of the system is presented with particular focus on the recuperative system and the HEXs mounted into the aeroengine's exhaust nozzle. The herein presented results were based on the combined use of CFD computations, experimental measurements, and thermodynamic cycle analysis. They focus on the effects of total pressure losses and HEX efficiency on the aeroengine performance especially the engine's overall efficiency and the specific fuel consumption (SFC). More specifically, two different hotgas exhaust nozzle configurations incorporating modifications in the system of HEXs are examined. The results show that significant improvements can be achieved in overall efficiency and SFC, hence contributing to the reduction of CO2 and NOx emissions. The design of a more sophisticated recuperation system can lead to further improvements in the aeroengine efficiency in the reduction of fuel consumption. This work is part of the European funded research program Low Emissions Core engine Technologies (LEMCOTEC).
    publisherThe American Society of Mechanical Engineers (ASME)
    titleThermodynamics Cycle Analysis, Pressure Loss, and Heat Transfer Assessment of a Recuperative System for Aero Engines
    typeJournal Paper
    journal volume137
    journal issue4
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4028584
    journal fristpage41205
    journal lastpage41205
    identifier eissn0742-4795
    treeJournal of Engineering for Gas Turbines and Power:;2015:;volume( 137 ):;issue: 004
    contenttypeFulltext
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