CIV E 444 - APPLIED HYDRAULICS
SPRING 2016
LAB No. 11 SOLUTION

  1. For a culvert type square edge with headwalls, use Ke = 0.5. Use KE = 1 for free outlet. Use ONLINE CULVERT for the given data.

    Results: Culvert diameter: D = 5 ft; critical depth yc = 4.735 ft; normal depth yn = 4.653 ft.

    By trial and error, at the discharge Q = 375 cfs, the required culvert diameter would be D = 5.5 ft.

  2. HD = 1.0 m.

    P = 170 - 155 = 15 m.

    P / HD = 15

    From Fig. 7-10 (a) below:   CD = 0.492

    Q = C (2g)1/2 L H3/2 = 53.15 C H3/2

    Spillway rating is shown in the following table. Head H (Col. 2) is elevation above the crest.

    The ratio C/CD (Col. 4) is obtained from Fig. 7-10 (b) (below) for each H / HD.

    Elevation (m)

    (1)

    		H (m)

    (2)

    		H / HD

    (3)

    		C / CD

    (4)

    		C

    (5)

    		H3/2

    (6)

    		Q (m3/s)

    (7)

    170.00.00.00.000.0000.000.000
    170.20.20.20.8420.4140.08941.967
    170.40.40.40.8950.4400.2535.917
    170.60.60.60.9350.4600.46511.369
    170.80.80.80.9680.4760.71518.089
    171.01.01.01.0000.4921.00026.150
    171.21.21.21.0250.5041.31430.377
    171.41.41.41.0480.5161.65645.416
    171.61.61.61.0700.5262.02456.585

    The same results are obtained when running ONLINE OGEE RATING.

  3. ΔE = 0.674 ft, verified with ONLINE CHANNEL 12.

  4. Do/D1 = 24 / 8 = 3

    The pressure coefficient is defined as:   V1 = Vo (1 - Cp)1/2

    Cp = 1 - (V1/Vo)2 = 1 - (Do/D1)4 = - 80.

    The free-vortex incipient cavitation index is:   σi, A = 1 - 2 Cp = 1 - [2 × (- 80)] = 161

    pv = 37 psf

    σi = (po - pv) / (ρVo2 /2)

    161 = [(25 × 144 in2/ft2) - 37)] / [ 1.94 Vo2/2]

    Vo = 4.78 fps

    Q = Vo Ao = Vo (π/4) Do2 = 4.78 (0.7854) (2)2 = 15 cfs.