CIV E 444 - APPLIED HYDRAULICS
SPRING 2016
LAB No. 12 SOLUTION

D = 40 cm = 0.4 m.
n = 1000 rpm = 1000 / 60 = 16.667 rps
C_H = ΔH / [ (D²n²) / g ] = (3 × 9.81) / [(0.4)² (16.667)²] = 0.662
From the given figure, with C_H = 0.662, find C_Q = 0.65, and with C_Q = 0.65, find C_P = 0.54
C_Q = Q / (nD³) = 0.65
Q = 0.65 nD³ = 0.65 × 16.667 × (0.4) ³ = 0.693 m³/s
C_P = P / (ρ D⁵ n³)
ρ = 1 KN ⋅ s²/m⁴
P = 0.54 ρ D⁵ n³ = 0.54 (1) (0.4)⁵ (16.667)³ [KN ⋅ m/s]
P = 25.6 KN ⋅ m/s = 25.6 KW

From the first figure, at maximum efficiency: ΔH = 95 m, and Q = 0.214 m³/s
( C_H ) _N = ( C_H ) _{N = 2133.5}
[ ΔH / (D²n² / g) ] _N = [ ΔH / (D²n² / g) ] _{N = 2133.5}
[ ΔH / (n²) ] _N = [ ΔH / (n²) ] _{N = 2133.5}
70 / N² = 95 / (2133.5)²
N = 2133.5 (70/95)^1/2 = 1882 RPM
(C_Q)_{N = 1882} = (C_Q) _{N = 2133.5}
[Q / (nD³)] _{N = 1882} = [Q / (nD³)] _{N = 2133.5}
Q_{N = 1882} / Q_{N = 2133.5} = 1882 / 2133.5 = 0.883
Q_{N = 1882} = 0.883 Q_{N = 2133.5} = 0.883 × 0.214 = 0.189 m³/s
n = 1882 / 60 = 31.37 rps
D = 0.371 m
C_Q = Q / (nD³) = 0.189 / [ 31.37 × (0.371)³ ] = 0.119

From the second figure: C_P = 0.68
C_P = P / (ρ D⁵ n³)
ρ = 1 KN ⋅ s²/m⁴
P = 0.68 ρ D⁵ n³ = 0.68 × 1 × (0.371)⁵ (31.37)³ [KN ⋅ m/ s]
P = 147.5 KN ⋅ m/ s = 147.5 KW

h_p = (z₂ - z₁) + [V²/(2g)] [f (L/D) + ∑ K_L ]
h_p = (z₂ - z₁) + [ Q²/(2gA²)] [ f (L/D) + K_e + K_b + K_E ]
From Table 5-3 (in the text): K_e = 0.5; K_b = 0.19; K_E = 1
h_p = (500 - 450) + [ Q²/(2g ((π/4) D²)²) ] [ 0.016 (2000/0.5) + 0.5 + 0.19 + 1 ]
h_p = 50 + [ Q²/(2 (9.81) (π/4)² (0.5)⁴ ] (65.69)
h_p = 50 + [ Q²/(0.7564) ] (65.69)
h_p = 50 + 86.84 Q²
Pump performance curve: H = 70 - 700 Q ²
At H = h_p: Q = 0.159 m³/s
h_p = 50 + 86.84 (0.159) ² = 52.195 m.