Experimental Study on Performance of Inlet Guide Vane with Improvement of Blade Airfoil and Cascade Solidity
|更新时间:2025-12-08
|
Experimental Study on Performance of Inlet Guide Vane with Improvement of Blade Airfoil and Cascade Solidity
Vol. 42, Issue 5, Pages: 583-587(2008)
作者机构:
西安交通大学流体机械研究所,西安,710049
作者简介:
基金信息:
DOI:
CLC:TH43
Online First:10 May 2008,
Published:2008
稿件说明:
移动端阅览
张义云, 祁大同, 谭佳健, et al. Experimental Study on Performance of Inlet Guide Vane with Improvement of Blade Airfoil and Cascade Solidity[J]. 2008, 42(5): 583-587.
DOI:
张义云, 祁大同, 谭佳健, et al. Experimental Study on Performance of Inlet Guide Vane with Improvement of Blade Airfoil and Cascade Solidity[J]. 2008, 42(5): 583-587.DOI:
Experimental Study on Performance of Inlet Guide Vane with Improvement of Blade Airfoil and Cascade Solidity
The aerodynamic performance of fans is significantly influenced by the inlet guide vane(IGV). Based on the experimental results of aerodynamic performance of a centrifugal fan with IGV
two improvement methods are proposed
i.e.
the dual linear segment of the airfoil shape replace original one and the increment of cascade solidity at small radius
to improve the IGV performance. The flowfields downstream of the improved IGV were measured with a five-hole probe. The measurement results indicate that the resistance coefficient of the improved IGV with the dual linear segment of the airfoil shape is smaller than that of the original one at the same vane angle while the prerotation coefficient of the improved IGV is larger than that of the original one. The optimal intersection angle of the dual linear segment is about 20°. Moreover
the prerotation coefficient of the improved IGV with larger blade solidity is obviously greater than that of the original one while the resistance coefficient is almost the same. In addition
the increased prerotation coefficient can be helpful to the extended modulation ability and energy saving of the IGV. For the centrifugal fan tested
the energy consumption decreases by about 2%-3% at the same flowrate of the fan when the vane angle of IGV is between 50° to 90°. It is possible that the function of the prerotation coefficient vs. the resistance coefficient could represent aerodynamic performance of IGV more effectively than the function of the prerotation coefficient vs. the vane angle
which could eliminate the influence by the difference position for zero vane angle.
关键词
Keywords
references
刘家钰. 电站风机改造与可靠性分析[M]. 北京:中国电力出版社, 2002:31-56.
李庆宜. 通风机[M]. 北京:机械工业出版社, 1995: 230-246.
COPPINGER M, SWAIN E. Performance prediction of an industrial centrifugal compressor inlet guide vane system[J]. Proc Instn Mech Engrs:Part A, 2000,214:153-164.
CHAN W K, WONG Y W, YU S C M, et al. A computational study of the effects of inlet guide vanes on the performance of a centrifugal blood pump[J]. Artif Organs, 2002,26(6):534-542.
SORANNA F, CHOW Y C, UZOL O. The effect of inlet guide vanes wake impingement on the flow structure and turbulence around a rotor blade[J]. ASME J of Turbomachinery,2006,128(1):82-95.
WEN Tingdong, MA Suxia. Economical analysis of axial guide vane for centrifugal fan[J]. Journal of Taiyuan University of Technology, 2002,33(4):406-408.
ZHANG Yiyun, QI Datong, Tan Jiajian, et al. Experimental study on inlet guide vane with straight blade in a centrifugal fan [J]. Journal of Xi'an Jiaotong University, 2007,41(9):1044-1048.