Opportunities in Jet-Impingement Cooling for Gas-Turbine Engines

被引:18
|
作者
Dutta, Sandip [1 ]
Singh, Prashant [2 ]
机构
[1] Clemson Univ, Dept Mech Engn, Clemson, SC 29634 USA
[2] Mississippi State Univ, Dept Mech Engn, Box 9552, Starkville, MS 39762 USA
关键词
impingement; heat transfer; jet impingement; turbine cooling; jet orifice; crossflow; HEAT-TRANSFER CHARACTERISTICS; IMPINGING AIR-JET; CROSS-FLOW; TRANSFER DISTRIBUTIONS; MASS-TRANSFER; ARRAY IMPINGEMENT; FLAT SURFACE; ENTRAINMENT; SINGLE; NOZZLE;
D O I
10.3390/en14206587
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Impingement heat transfer is considered one of the most effective cooling technologies that yield high localized convective heat transfer coefficients. This paper studies different configurable parameters involved in jet impingement cooling such as, exit orifice shape, crossflow regulation, target surface modification, spent air reuse, impingement channel modification, jet pulsation, and other techniques to understand which of them are critical and how these heat-transfer-enhancement concepts work. The aim of this paper is to excite the thermal sciences community of this efficient cooling technique and instill some thoughts for future innovations. New orifice shapes are becoming feasible due to innovative 3D printing technologies. However, the orifice shape variations show that it is hard to beat a sharp-edged round orifice in heat transfer coefficient, but it comes with a higher pressure drop across the orifice. Any attempt to streamline the hole shape indicated a drop in the Nusselt number, thus giving the designer some control over thermal budgeting of a component. Reduction in crossflow has been attempted with channel modifications. The use of high-porosity conductive foam in the impingement space has shown marked improvement in heat transfer performance. A list of possible research topics based on this discussion is provided in the conclusion.
引用
收藏
页数:29
相关论文
共 50 条
  • [1] Jet-impingement heat transfer in gas turbine systems
    Han, B
    Goldstein, RJ
    [J]. HEAT TRANSFER IN GAS TURBINE SYSTEMS, 2001, 934 : 147 - 161
  • [2] Modelling of Jet-Impingement Cooling for Power Electronics
    Rizvi, M. J.
    Skuriat, R.
    Tilford, T.
    Bailey, C.
    Johnson, C. M.
    Lu, H.
    [J]. EUROSIME 2009: THERMAL, MECHANICAL AND MULTI-PHYSICS SIMULATION AND EXPERIMENTS IN MICRO-ELECTRONICS AND MICRO-SYSTEMS, 2009, : 107 - +
  • [3] GAS-TURBINE ENGINES
    METZGER, DE
    MAYLE, RE
    [J]. MECHANICAL ENGINEERING, 1983, 105 (06): : 44 - 52
  • [4] GAS SCREEN IN GAS-TURBINE ENGINES
    VARGANOV, IS
    [J]. IZVESTIYA VYSSHIKH UCHEBNYKH ZAVEDENII AVIATSIONAYA TEKHNIKA, 1979, (01): : 11 - 16
  • [5] CERAMICS FOR GAS-TURBINE ENGINES
    TORTI, ML
    [J]. MATERIALS AND SOCIETY, 1984, 8 (02): : 219 - 220
  • [6] COGENERATION WITH GAS-TURBINE ENGINES
    NAJJAR, YSH
    AKYURT, M
    ALRABGHI, OM
    ALP, T
    [J]. HEAT RECOVERY SYSTEMS & CHP, 1993, 13 (05): : 471 - 480
  • [7] TESTING GAS-TURBINE ENGINES
    不详
    [J]. MACHINE TOOL REVIEW, 1978, 66 (385): : 129 - 129
  • [8] Estimation of Efficiency of the Cooling Channel of the Nozzle Blade of Gas-Turbine Engines
    Vikulin A.V.
    Yaroslavtsev N.L.
    Zemlyanaya V.A.
    [J]. Thermal Engineering, 2018, 65 (2) : 88 - 92
  • [9] STATISTICAL DIAGNOSTICS OF GAS-TURBINE ENGINES
    KOZHEVNIKOV, YV
    [J]. IZVESTIYA VYSSHIKH UCHEBNYKH ZAVEDENII AVIATSIONAYA TEKHNIKA, 1978, (02): : 30 - 35
  • [10] GAS-TURBINE SUPERCHARGED DIESEL ENGINES
    NIGMATUL.IN
    [J]. RUSSIAN ENGINEERING JOURNAL-USSR, 1965, 45 (10): : 96 - &