CIV E 444 - APPLIED HYDRAULICS
SPRING 2016
HOMEWORK No. 8 SOLUTION

The flow area when the tunnel is flowing full is:
A = (18 × 9) + 3.1416 × 9² / 2 = 289.2 ft²
The wetted perimeter is:
P = 18 + 9 + 9 + (3.1416 × 9) = 64.27 ft
The hydraulic radius is:
R = 289.2 / 64.27 = 4.5 ft
The mean velocity is:
V = Q/ A = 4000 / 289.2 = 13.8 fps
The velocity head is: h_v = 13.8² /(2 × 32.17 ) = 2.96 ft
The kinematic viscosity is:
ν = 1.06 × 10^-5 ft²/s
The Reynolds number is:
Re = V (4R) / ν = 13.8 (4 × 4.5) / (1.06 × 10^-5 ) = 23,433,962
The relative roughness is:
k_s / (4R) = 0.01/ (4 × 4.5) = 0.00055
From the Moody diagram, for Re = 23,000,000 and k_s = 0.0005:
f = 0.017
The head loss in ft/mile is:
h_f = f [L/(4R)] h_v = 0.017 × [5280 / (18)] × 2.96 = 14.7 ft/mi
Write the energy equation between the reservoirs:
The line losses are: (14.7/5280) × 8550 ft = 23.8 ft
Other losses are: h_v ∑ (losses) = 2.96 (0.09 + 0.03 + 0.72 + 0.25) = 3.23 ft
Total losses are: 23.9 + 3.23 = 27.03 ft
Head delivered to turbines = 3250 - 1575 - 27 = 1648 ft
Maximum power delivered to turbines:
P (HP) = γ Q H = 62.4 × 4000 × 1648 / 550 = 747,892 HP
P (MW) = P (HP) × 0.746 /1000
P = 557.9 MW
Three energy balance equations and continuity equation:
z_A = z_D + p_D/γ + f_AD (L_AD /D_AD ) V_AD² / (2g)
z_B = z_D + p_D/γ + f_BD (L_BD /D_BD ) V_BD² / (2g)
z_D + p_D/γ = f_DC (L_DC /D_DC ) V_DC² / (2g)
V_AD A_AD + V_BD A_BD = V_DC A_DC
A_AD = 0.3491 ft²
A_BD = 0.5454 ft²
A_DC = 0.7854 ft²
State continuity equation as follows: V_AD A_AD + V_BD A_BD - V_DC A_DC = X
The solution is by trial and error.
Assume p_D/γ and calculate resulting velocities using energy equations; then plug velocities and areas in continuity equation until X = 0.
First assume V_AD = 0.
Then p_D/γ = 90.0 ft.
Start by assuming a somewhat lessr value:
p_D/γ = 80 ft: X = -2.98 Then:
p_D/γ = 70 ft: X = -2.12
p_D/γ = 50 ft: X = -0.58
p_D/γ = 44 ft: X = -0.12
p_D/γ = 43 ft: X = -0.05
p_D/γ = 42 ft: X = 0.02
p_D/γ = 42.3 ft: X = 0.00
The final velocities are:
V_AD = 5.057 fps.
V_BD = 5.118 fps.
V_DC = 5.801 fps.
Q_AD = 0.3491 × 5.057 = 1.765cfs.
Q_BD = 0.5454 × 5.118 = 2.791 cfs.
Q_DC = 0.7854 × 5.801 = 4.556 cfs.
p_D = 42.3 ft × 62.4 lb/ft ³ = 2,640 lb/ft²
The head loss through either pipes 1 or 2 is the same.
V₁/V₂ = [(f₂ L₂ D₁) / (f₁ L₁ D₂)] ^1/2
V₁/V₂ = [(0.03 × 3200 × 1) / (0.02 × 3000 × 1.3333)] ^1/2 = 1.0955
(D₁/D₂)² = (1/1.3333)² = 0.5625
Q₁ = Q / { { 1 / [(V₁/V₂) (D₁/D₂)²]} + 1 }
Q₁ = 20 / { [ 1 / (1.0955 × 0.5625)] + 1 } = 7.625 cfs.
Q₂ = Q / { [(V₁/V₂) (D₁/D₂)²] + 1}
Q₂ = 20 / [(1.0955 × 0.5625) + 1 ] = 12.375 cfs.
Q₁ + Q₂ = 20 cfs = Q OK!
V₁ = Q₁ / A₁ = 7.625 / [(π/4) 1²] = 9.708 fps.
V₂ = Q₂ / A₂ = 12.375 / [(π/4) 1.3333²] = 8.863 fps.
h_{L, 1} = f₁ (L₁/D₁) [V₁²/(2g)]
h_{L, 1} = 0.02 (3000/1) [9.708²/(2 × 32.17)] = 87.888 ft.
h_{L, 2} = f₂ (L₂/D₂) [V₂²/(2g)]
h_{L, 2} = 0.03 (3200/1.3333) [8.863²/(2 × 32.17)] = 87.907 ft.
h_{L, 1} = h_{L, 2} OK!