西安理工大学机械与精密仪器工程学院,西安,710048
网络首发:2017-11-10,
纸质出版:2017
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税琳棋 1, 黄博 1, 董坤坤 1, 等. 燃气透平叶片树状分形内冷微通道的换热特性实验研究[J]. 西安交通大学学报, 2017,51(11):43-50.
Experimental Research on Heat Transfer Characteristics of Fractal Tree-Like Microchannel for Cooling Gas Turbine Blade[J]. 2017, 51(11): 43-50.
税琳棋 1, 黄博 1, 董坤坤 1, 等. 燃气透平叶片树状分形内冷微通道的换热特性实验研究[J]. 西安交通大学学报, 2017,51(11):43-50. DOI: 10.7652/xjtuxb201711007.
Experimental Research on Heat Transfer Characteristics of Fractal Tree-Like Microchannel for Cooling Gas Turbine Blade[J]. 2017, 51(11): 43-50. DOI: 10.7652/xjtuxb201711007.
针对燃气透平叶片内部对流冷却特点
基于能量输运原理和分形几何理论生成了适用于叶片内部流体输运的分形网络
并设计了4级T型树状分形分叉微通道内冷结构。在建立的透平叶片内冷微通道对流冷却实验平台上
研究了通道进口雷诺数和加热功率对空气的努塞尔数、摩擦系数和强化换热因子的影响。结果表明:当雷诺数从194增大到19 400时
空气的平均努塞尔数增大148.5%
摩擦系数从0.78减小到0.009
最大强化换热因子在通道进口雷诺数为17 300时获得; 加热功率从10 W增大到110 W时
平均努塞尔数降低35.9%
而摩擦系数几乎不变
加热功率为10 W时具有最佳的强化换热特性; 分叉结构耦合共轭传热效应显著提高了第2、第3级微通道的当地努塞尔数; 相比于前3级通道
末级通道的换热性能受雷诺数和加热功率的影响更为突出。
Following energy transport principle and fractal geometry theory
the fractal network fitted for the fluid flow transport in the blade internal passages was generated
and the fractal tree-like branching microchannel was designed as an internal cooling structure for turbine blade. In the experiment system of convection cooling for gas turbine internal microchannel
the effects of inlet Reynolds number and heating power on the Nusselt number
friction factor and enhancement heat transfer factor of air flow were investigated. The results reveal that as Reynolds number ranges from 194 to 19 400
the average Nusselt number of air increases by 148.5%
the friction factor decreases from 0.78 to 0.009 and the maximum value of enhancement heat transfer is obtained at inlet Reynolds number=17 300. When the heating power ranges from 10 W to 110 W
the average Nusselt number reduces by about 35.9%
the friction factor changes slightly and the best enhancement heat transfer factor is observed at P=10 W. The local Nusselt numbers of the first and second level microchannel are greatly promoted by the branching structure in combination with the conjugation heat transfer effects. In comparison of the first three levels microchannels
the heat transfer performance of the last level microchannel is more obviously affected by Reynolds number and heating power.
韩介勤, 杜达, 艾卡德. 燃气轮机传热和冷却技术 [M]. 程代京, 等译. 西安: 西安交通大学出版社, 2005: 196-246.
FORSYTH P, McGILVRAY M, GILLESPIE D R H. Secondary flow and heat transfer coefficient distributions in the developing flow region of ribbed turbine blade cooling passages [J]. Experiments in Fluids, 2017, 58(1): 5.
AMAGASA S, OTOMO F, FUKUYAMA Y. Testing for a steam cooling gas turbine nozzle [C]∥JSME Annual Conference. Tokyo, Japan: JSME, 1991: 408-410.
WANG W, GAO J M, SHI X J, et al. Cooling performance analysis of steam cooled gas turbine nozzle guide vane [J]. International Journal of Heat and Mass Transfer, 2013, 62(1): 668-679.
史晓军, 税琳棋, 陶小兵, 等. 叶片内冷通道中采用汽雾换热或蒸汽换热的实验研究 [J]. 中国电机工程学报, 2015, 35(12): 3061-3067.
SHI Xiaojun, SHUI Linqi, TAO Xiaobin, et al. Heat transfer experimental investigation of mist/stream or stream within gas turbine blade internal cooling passage [J]. Proceedings of the Chinese Society for Electrical Engineering, 2015, 35(12): 3061-3067.
XU G Q, LIU Y P, LUO X, et al. Experimental investigation of transpiration cooling for sintered woven wire mesh structures [J]. International Journal of Heat and Mass Transfer, 2015, 91: 898-907.
FAN X J, DU C H, LI L, et al. Numerical simulation on effects of film hole geometry and mass flow on vortex cooling behavior for gas turbine blade leading edge [J]. Applied Thermal Engineering, 2017, 112: 472-483.
SHERMAN T F. On connecting large vessels to small: the meaning of Murray's law [J]. The Journal of General Physiology, 1981, 78(4): 431-453.
WEST G B, BROWN J H, ENQUIST B J. A general model for the structure and allometry of plant vascular systems [J]. Nature, 1999, 400(6745): 664-667.
BEJAN A. Constructal law: optimization as design evolution [J]. ASME Journal of Heat Transfer, 2015, 137(6): 061003.
BEJAN A, ERRERA M R. Deterministic tree networks for fluid flow: geometry for minimal flow resistance between a volume and one point [J]. Fractals, 1997, 5(4): 685-695.
BEJAN A. Shape and structure, from engineering to nature [M]. Cambridge, UK: Cambridge University Press, 2000: 219-223.
PENCE D V. Improved thermal efficiency and temperature uniformity using fractal-like branching channelnetworks [C]∥International Conference on Heat Transfer and Transport Phenomena in Microscale. New York, USA: Begell House, 2000: 142-148.
PENCE D V. Reduced pumping power and wall temperature in microchannel heat sinks with fractal-like branching channel networks [J]. Nanoscale and Microscale Thermophysical Engineering, 2002, 6(4): 319-330.
CHEN Y P, CHENG P. Heat transfer and pressure drop in fractal tree-like microchannel nets [J]. International Journal of Heat and Mass Transfer, 2002, 45(13): 2643-2648.
陈永平, 郑平. 新型分形树状微通道散热器的实验研究 [J]. 工程热物理学报, 2007, 27(5): 853-855.
CHEN Yongping, ZHENG Ping. The new fractal tree-like microchannel heat sink experimental study [J]. Journal of Engineering Thermophysics, 2007, 27(5): 853-855.
WU H H, LI D C, GUO N N. Fabrication of integral ceramic mold for investment casting of hollow turbine blade based on stereolithography [J]. Rapid Prototyping Journal, 2009, 15(4): 232-237.
王梦, 吴宏, 徐国强, 等. 微小通道流动换热特性分析及其结构优化 [J]. 航空动力学报, 2009, 24(5): 994-999.
WANG Meng, WU Hong, XU Guoqiang, et al. Investigation on flow and heat transfer characteristics and optimum structural design in the rectangular microchannels [J]. Journal of Aerospace Power, 2009, 24(5): 994-999.
DEVORE M A, KAUFMAN E D. Branched airfoil core cooling arrangement: US8449254[P]. 2013-05-28.
孙纪宁, 邓晶, 邓宏武. 涡轮叶片微小通道气膜新型复合冷却结构设计 [J]. 北京航空航天大学学报, 2012, 38(5): 702-706.
SUN Jining, DENG Jing, DENG Hongwu. Structure design of a new cooling system combined microchannel and film cooling in the turbine blade [J]. Journal of Beijing University of Aeronautics and Astronautics, 2012, 38(5): 702-706.
MANDELBROT B B, PIGNONI R. The fractal geometry of nature [M]. San Francisco, CA: WH Freeman, 1983: 286-287.[22] KLINE S J, McCLINTOCK F A. Describing experimental uncertainties in single-sample experiments [J]. Mechanical Engineering, 1953, 75(1): 3-8.
NONINO C, SAVINO S, DEL GIUDICE S, et al. Conjugate forced convection and heat conduction in circular microchannels [J]. International Journal of Heat and Fluid Flow, 2009, 30(5): 823-830.
STEPHAN K, PREUSSER P. Wärmeübergang und maximale wärmestromdichte beim behältersieden binärer und ternärer flüssigkeitsgemische [J]. Chemie Ingenieur Technik, 1979, 51(1): 37-37.
SHAH R K, LONDON A L. Laminar flow forced convection in ducts [J]. Journal of Fluids Engineering, 2014, 102(2): 431-455.
税琳棋, 高建民, 刘加增, 等. 不同冷却工况下90°带肋通道中蒸汽的强化换热特性研究 [J]. 西安交通大学学报, 2012, 46(9): 6-11.
SHUI Linqi, GAO Jianmin, LIU Jiazeng, et al. Heat transfer intensification of steam for the cooling process in 90° rib rectangular channels [J]. Journal of Xi'an University, 2012, 46(9): 6-11.
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