CIV E 445 - APPLIED HYDROLOGY SPRING 2003 SOLUTIONS TO HOMEWORK 2 , CHAPTER 2
Problem 2-1 The mean annual flow is: Q = [ 19.6 m3/s • 86,400 s/d • 365 d/y • 1000 mm/m ] / [ 6937 km2 • (1000 m/km)2 ] = 89.1 mm/y
The precipitation depth abstracted by the catchment is equal to: (485 - 89.1) = Problem 2-2 Since i = a/tm, it follows that log i = log a - m log t. Therefore: log (45) = log a - m log (1) log (20) = log a - m log (2)
Solving for a and m:
Problem 2-3 Since at t = ∞, the final infiltration rate is 0.6 mm/h, then: fc = 0.6 mm/h. Therefore, from Eq. 2-13: 3.5 = 0.6 + (fo - 0.6) e -k; and 1.0 = 0.6 + (fo - 0.6) e -3k
Problem 2-4
Try several likely values for φ. For instance, assume φ between 1 and 2 cm/h. Therefore: 2 • (2 - φ) + 2 • (3 - φ) + 2 • (4 - φ) + 2 • (2 - φ)= 12. Solving for φ: φ = 1.25 cm/h. |