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"0 -i _,ow_l_._-:_s4-'_"-_°r , 120 100 E O I Shroud --_. \ ,: 80 _ U ; -50_- :_ -40 Surface2-_ (a) 175 150 E 125 O 100 O •-_ 75 "O "0 _ 50 I (c) Figure the 4.--Profiles J three two from inspected high-speed blade tips: 25 one from scaled to 0 20 - 0 _ A_- .L_,: LE _B 0I Axial distance, z, cm -10 ,, ) _ : lO - _p y -_ Hub-_ Inlet Three blades Knee Radial, Axial, LSCC and the same dimensions. impellers (a) LSCC blade tips. (b) 6:1 Ti -1 O0 -50 I 0 60 I 1O0 2.54mm h oE 5I0 30 20 10 0 x-axis, cm nse e Span Span 81.280 cm 167.640 cm Sta. 2 (r/rt = 1.067) 1 / of blade tips. (c) 4:1 A1 blade tips. The lower side is the pressure side in all cases. Axial distance, z, cm Figure 5.--Meridionai view of LSCC flow path. I 1-10 0 10 20 30 40 50 60 70 040 Surface distance, s, cm Section A-A 2 f '_n_W; E _--Surface '_1 I I 1--#-- Il Figure 3.--Illustration of blade coordinate nomenclature (TE = trailing edge; LE = leading edge; SS = suction surface; PS = pressure surface). Although the blades are comprised of straight line elements from hub to tip along a quasi- orthogonal section, they appear curved for a constant z-section cut, as in section B-B. Station (Sta.) Distance Sta. 0 Sta. 1 IJ rz Section B-B -76.581 cm -20.373 cm Span Span Sta. 3 t l_ | I J Shroud wedge 39PDF Image | Laser anemometer measurements of the three-dimensional rotor flow
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