西北工业大学动力与能源学院,西安,710072
网络首发:2013-03-10,
纸质出版:2013
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李红才, 朱惠人, 任战鹏, 等. 短周期风洞上动叶表面压力和换热测量[J]. 西安交通大学学报, 2013,47(3):114-119.
Pressure and Heat Transfer Measurements for Blade Surface in Short-Duration Wind Tunnel[J]. 2013, 47(3): 114-119.
李红才, 朱惠人, 任战鹏, 等. 短周期风洞上动叶表面压力和换热测量[J]. 西安交通大学学报, 2013,47(3):114-119. DOI: 10.7652/xjtuxb201303021.
Pressure and Heat Transfer Measurements for Blade Surface in Short-Duration Wind Tunnel[J]. 2013, 47(3): 114-119. DOI: 10.7652/xjtuxb201303021.
采用短周期冷态传热风洞研究了某型放大动叶表面静压及换热系数分布
实验中雷诺数和叶栅压比范围涵盖了叶片的典型工作状态。结果表明:压比是影响表面压力系数的主要因素
雷诺数的影响可以忽略; 雷诺数和压比都会影响表面换热系数和绝热壁温
随着雷诺数的增大
叶片表面换热系数增加
吸力面转捩点前移
大雷诺数的换热系数分布趋势有别于小雷诺数; 保持主流总温不变
随着叶栅压比的增大或雷诺数的减小
绝热壁温降低
小雷诺数下绝热壁温实验值低于平板的理论计算值。
Surface pressure and heat transfer measurements for an enlarged blade were conducted in a short-duration cold heat transfer wind tunnel at representative Reynolds numbers and pressure ratios. The results suggest that the blade pressure ratio is the main factor affecting the pressure coefficient distribution
while the effect of the Reynolds number can be neglected. The Reynolds number and pressure ratio both contribute to the heat transfer coefficient and local adiabatic wall temperature. With the increase in Reynolds numbers
the surface heat transfer coefficients increase and the transition point of the suction side moves upward
showing that the heat transfer coefficients distribution at larger Reynolds numbers is different from that at smaller Reynolds numbers. The local adiabatic wall temperature decreases with an increase in the pressure ratio or the decrease in the Reynolds number at constant main stream total temperature. Additionally
the experiment data for the local adiabatic wall temperature are smaller than the analytical solution for flat plates at small Reynolds numbers.
HALDEMAN C W, DUNN M G. Heat transfer measurements and predictions for the vane and blade of a rotating high-pressure turbine stage [C]∥Proceedings of ASME Turbo Expo 2003. New York, USA: ASME, 2003: 591-600.
BERGHOLZ R F, DUNN M G, STEUBER G D. Rotor/stator heat transfer measurements and CFD predictions for short-duration turbine rig tests, 2000-GT-208 [R]. New York, USA: ASME, 2000.
HALDEMAN C W, DUNN M G, BARTER J W, et al. Aerodynamic and heat-flux measurements with predictions on a modern one and 1/2 stage high pressure transonic turbine [C]∥Proceedings of ASME Turbo Expo 2004. New York, USA: ASME, 2004: 439-450.
TALLMAN J A, HALDEMAN C W, DUNN M G, et al. Heat transfer measurements and predictions for a modern, high-pressure, transonic turbine, including endwalls [C]∥Proceedings of ASME Turbo Expo 2006. New York, USA: ASME, 2006: 721-737.
李静美, 赵润民, 王吉南. 用短周期风洞进行涡轮叶片传热实验初探 [J]. 航空动力学报, 1987, 2(2): 18-22.
LI Jingmei, ZHAO Runmin, WANG Jinan. Turbine blade surface heat transfer measurements in short-duration facility [J]. Journal of Aerospace Power, 1987, 2(2): 18-22.
周勇, 赵晓路, 徐建中. 短周期实验台涡轮机匣换热实时测量初探 [J]. 工程热物理学报, 2008, 29(2): 208-302.
ZHOU Yong, ZHAO Xiaolu, XU Jianzhong. Time-resolved heat transfer measurements on turbine outer endwall in a blow-down transient test facility [J]. Journal of Engineering Thermophysics, 2008, 29(2): 208-302.
OLDFIELD M L G. Impulse response processing of transient heat transfer gauge signals [J]. ASME Journal of Turbomach, 2008, 130(2): 021023.
GIEL P W, BUNKER R S, FOSSEN G J V, et al. Heat transfer measurements and predictions on a power generation gas turbine blade, 2000-GT-0209 [R]. New York, USA: ASME, 2000.
朱谷君. 工程传热传质学 [M]. 北京: 航空工业出版社, 1989.
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