CIV E 444 - APPLIED HYDRAULICS
SPRING 2016
LAB No. 9 SOLUTION

Use orifice equation: Q = K A_o (2g Δh)^1/2
Assume d, find K from Fig. 5-21, and calculate Q. Repeat for another d.
First trial: d = 2 ft
d / D = 2 / 4 = 0.5
Δh = Δp/γ = (2000 lbs/ft²)/(62.4 lbs/ft³) = 32.05 ft
(2 g Δh)^1/2 = (2 × 32.17 × 32.05) ^1/2 = 45.41
For T= 20^oC: ν = 1.27 × 10^-5 ft²/s
(2 g Δh)^1/2 d/ν = 45.41 × 2 / (1.27 × 10^-5) = 7.15 × 10⁶
From Fig. 5-21: K = 0.63
Q = 0.63 (π/4) (2)² × 45.41 = 90 cfs [Discharge is too low; orifice too small]

Second trial: d = 2.5; d / D = 0.625.
Δh = Δp/γ = (2000 lbs/ft²)/(62.4 lbs/ft³) = 32.05 ft
(2 g Δh)^1/2 = (2 × 32.17 × 32.05) ^1/2 = 45.41
For T= 20^oC: ν = 1.27 × 10^-5 ft²/s
(2 g Δh)^1/2 d/ν = 45.41 × 2.5 / (1.27 × 10^-5) = 8.94 × 10⁶
From Fig. 5-21: K = 0.66
Q = 0.66 (π/4) (2.5)² × 45.41 =147 cfs [Discharge is too low; orifice too small]

Third trial: d = 2.1; d / D = 0.525.
Δh = Δp/γ = (2000 lbs/ft²)/(62.4 lbs/ft³) = 32.05 ft
(2 g Δh)^1/2 = (2 × 32.17 × 32.05) ^1/2 = 45.41
For T= 20^oC: ν = 1.27 × 10^-5 ft²/s
(2 g Δh)^1/2 d/ν = 45.41 × 2.1 / (1.27 × 10^-5) = 7.51 × 10⁶
From Fig. 5-21: K = 0.63
Q = 0.63 (π/4) (2.1)² × 45.41 = 99 cfs [Discharge is ok now; orifice diameter ok]

Re_d / K = (2 g Δh) ^1/2 (d/ν)
Re_d / K = (2 × 9.81 × 10) [(0.25 / (1.0 × 10^-6)]
Re_d / K = = 3.5 × 10⁶
From Fig. 5-21: K = 0.61
Q = K A_o (2 g Δh) ^1/2
Q = 0.61 (π/4) (0.25)² (2 × 9.81 × 10) ^1/2
Q = 0.419 m³/s.

Re_d = 4 Q / ( π d ν)
Re_d = 4 × 0.6 / (3.1416 × 0.25 × 1.0 × 10^-6)
Re_d = 3.05 × 10⁶
K = 0.61
Δh = [Q / (K A_o) ]² / (2 g)
Δh = [0.6 / (0.61 × (π/4) 0.25² ]² / (2 × 9.81)
Δh = 20.46 m

k_s / D = 0.004 ft / 1 ft = 0.004
Assume very high Reynolds number. Estimate f from Moody diagram: f = 0.028.
Velocity head is lost in the free jet: K_E = 1
Write the energy equation between the reservoir water surface elevation and [the elevation of the] free jet.
100 - 64 = [f (L/D) + K_e + K_b + K_E] [V²/(2g)]
36 = [ 0.028 × (100/1) + 0.12 + 0.35 + 1 ] [V²/(2 × 32.17)]
36 = 4.27 (V²/64.34)
V = 23.29 fps.
V²/(2g) = (23.29)²/(2 × 32.17) = 8.43 ft.
The velocity head is 8.43 ft.
A = (π/4) D² = (3.1416/4) (1)² = 0.7854 ft²
Q = 23.29 × 0.7854 = 18.29 cfs.
For T = 60^oF : ν = 1.217 × 10^-5 ft²/s
Calculate Reynolds number: Re = VD/ν = 23.29 × 1 / (1.217 × 10^-5) = 1.9 × 10⁶
From Fig. 5-4: f = 0.028. [Assumed value is OK].
The point of maximum pressure p_max is right above (upstream) of the 90^o bend.
Write the energy equation between a point immediately upstream of the bend (max) and a point (2) at the exit.
The velocity heads are the same, so they cancel.
(p_max/γ) + z_max = (p₂/γ) + z₂ + Σ h_L
p₂/γ = 0
(p_max/γ) + 44 = 0 + 64 + [f (L/D) + K_b ][V²/(2g)]
(p_max/γ) + 44 = 0 + 64 + [0.028 (28/1) + 0.35](8.43)
p_max/γ = 20 + 9.56 = 29.56
p_max = γ (29.56) = 1845 lb/ft²
Or, alternatively, write the energy equation between the reservoir water surface elevation (1) and a point immediately upstream of the bend (max)
The velocity heads are the same, so they cancel.
(p₁/γ) + z₁ = (p_max/γ) + z_max + Σ h_L
p₁/γ = 0
0 + 100 = (p_max/γ) + 44 + [ f (L/D) + K_e + 1] [V²/(2g)]
56 = (p_max/γ) + [ 0.028 (72/1) + 0.12 + 1] [8.43]
56 = (p_max/γ) + 26.43
p_max/γ = 29.57 ft.
p_max = 1845 lb/ft²
Immediately upstream of the pipe entrance, the pressure head is 5 ft and the velocity head is 0.
Immediately downstream of the pipe entrance, the velocity head is 8.43 ft, and the drop in pressure head is 8.43(1 + 0.12)
Therefore, the point of minimum pressure is immediately downstream of the pipe entrance.
p_min = 62.4 × [5 - 8.43(1 + 0.12)] = -277 lb/ft².