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CIV E 445 - APPLIED HYDROLOGY SPRING 2009 SOLUTION TO HOMEWORK 7 , CHAPTER 5 Problem 7-1 (1) For shallow concentrated flow, paved, use Fig. 5-18 with slope S = 0.01 to find the average velocity (along the hydraulic length) is: V = 2.05 ft/s = 0.625 m/s. Therefore, the time of concentration is: tc = L / V = 3350 / 0.625 = 5360 = 1.49 h. (2) For 48% of the watershed area: for urban 1/3-ac lots, with lawns with 85% grass cover (i.e., in good hydrologic condition), 34% total impervious area, soil group C, use Fig 5-2 (a) to find the pervious area (open space) CN: CN = 74. With pervious area CN = 74 and 34% total impervious area find the composite CN from Fig. 5-16: composite CN = 83. (3) For 52% of the watershed area: for urban 1/3-ac lots, with lawns with 95% grass cover (i.e., in good hydrologic condition), 24% total impervious, 25% of it unconnected, soil group C, use Fig. 5-2 (a) to find the pervious area (open space) CN: CN = 74. With pervious area CN = 74, 24% total impervious area, 25% of it unconnected, find the composite CN from Fig. 5-17: composite CN = 79. (4) The runoff curve number for the entire watershed is obtained by areal weighing: CN = [(83 • 48) + ( 79 • 52)] / 100 = 80.92. Use CN = 81. (5) With CN = 81, use Eq. 5-49 to calculate the initial abstraction Ia: Ia = 1.2 cm With P = 12 cm, the ratio Ia / P is: Ia / P = 0.1 With P = 12 cm, CN = 81, and R = 2.54, use Eq. 5-9 to find Q: Q = 6.97 cm. Use Fig. 5-19 (a), with rainfall type IA (Pacific Northwest region), time of concentration tc = 1.49 h, and ratio Ia / P = 0.1, to find the unit peak discharge qu: qu = 95 ft3 / (s-mi2 / in) Converting to SI units: qu = 95 ft3 / (s-mi2 / in) • 0.0046 = 0.409 m3 / (s-km2-cm). For 0.2% pond and swamp areas, use Table 5-12 to find F: F = 0.97. Using Eq. 5-47: Qp = 0.409 m3 / (s-km2-cm) • 8.5 km2 • 6.97 cm • 0.97 = 23.5 m3/s. The 50-y peak discharge is: Qp = 23.5 m3/s. ANSWER. Problem 7-2
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