CIV E 445 - APPLIED HYDROLOGY SPRING 2010 SOLUTIONS TO HOMEWORK 3 , CHAPTER 2
Problem 3-1
E = 29.43 cm ANSWER.
Problem 3-2
E = 27.05 cm ANSWER.
Problem 3-3
E = 11.6 cm ANSWER.
Problem 3-4
At x = 0 km: elevation y = 100 m. At x = L = 320,000 m: elevation y = 14.66 m.
From Fig. 2-19, the area comprised between elevation y = 14.66 and the longitudinal profile is: Ap = YL/2.
Therefore, the S2 slope is: S2 = Y/L = 2Ap/L2.
The total area, At, below the longitudinal profile is obtained by integration between the limits of 0 and 320,000:
At = ∫0320,000 y dx = ∫0320,000 100e-0.000006x dx = 14,223,217
The area comprised between elevation 0 and elevation 14.66 m is:
Ab = 14.66 • 320,000 = 4,691,200 m2. Therefore, the area Ap is:
Ap = At - Ab = 9,532,017 m2.
S2 = 2Ap/L2 = 0.000186 ANSWER. |