Water (at 20°C) flows in the parallel pipes, as shown in the Figure Q3.1. The constructio material of the pipes is plastic. Diameters of the first and second lines are 4 ine (26.9/2.65) and 1¼ inch (42.4/3.25) nominal, respectively. No elevation difference exi in the system. If the pressures at point A and at point B are 2.1 mWH and at 0.1mW. respectively, Whot ie the vehumetrie fl our rote in oeoh brenoh of the erello1 nino (0-2 0-

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Chapter2: Loads On Structures
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Q3.
Water (at 20°C) flows in the parallel pipes, as shown in the Figure Q3.1. The construction
material of the pipes is plastic. Diameters of the first and second lines are 4 inch
(26.9/2.65) and 1¼ inch (42.4/3.25) nominal, respectively. No elevation difference exits
in the system. If the pressures at point A and at point B are 2.1 mWH and at 0.1MWH,
respectively,
a. What is the volumetric flow rate in each branch of the parallel pipe? (Qı=?, Q2=?)
b. What is the total volumetric flow rate at the main pipeline? (Qr=?)
Note: Friction factor can be found from Blasius Equation
PA
P3
Q7,
A
B
ΣL-10 m
Figure Q3.1. Schematic illustration of the parallel pipeline system
Transcribed Image Text:Q3. Water (at 20°C) flows in the parallel pipes, as shown in the Figure Q3.1. The construction material of the pipes is plastic. Diameters of the first and second lines are 4 inch (26.9/2.65) and 1¼ inch (42.4/3.25) nominal, respectively. No elevation difference exits in the system. If the pressures at point A and at point B are 2.1 mWH and at 0.1MWH, respectively, a. What is the volumetric flow rate in each branch of the parallel pipe? (Qı=?, Q2=?) b. What is the total volumetric flow rate at the main pipeline? (Qr=?) Note: Friction factor can be found from Blasius Equation PA P3 Q7, A B ΣL-10 m Figure Q3.1. Schematic illustration of the parallel pipeline system
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