Consider the encased pipe of Problem 4.29, but now allow tor the difference between the mean temperature of the fluid, which changes along the pipe length, and that of the pipe. (a) For the prescribed values of k, D, w, h, and T ∞ and a pipe of length L = 1 00 m . what is the outlet temperature T m , o of water that enters the pipe at a temperature of T m , i = 90 °C and a how rate of m = 2 kg / s ? (b) What is the pressure drop of the water and the corresponding pump power requirement? (c) Subject to the constraint that the width of the duct is fixed at w = 0. 3 0 m , explore the effects of the flow rate and the pipe diameter on the outlet temperature.
Consider the encased pipe of Problem 4.29, but now allow tor the difference between the mean temperature of the fluid, which changes along the pipe length, and that of the pipe. (a) For the prescribed values of k, D, w, h, and T ∞ and a pipe of length L = 1 00 m . what is the outlet temperature T m , o of water that enters the pipe at a temperature of T m , i = 90 °C and a how rate of m = 2 kg / s ? (b) What is the pressure drop of the water and the corresponding pump power requirement? (c) Subject to the constraint that the width of the duct is fixed at w = 0. 3 0 m , explore the effects of the flow rate and the pipe diameter on the outlet temperature.
Solution Summary: The author calculates Remold's number for the type of flow as follows: Mass flow rate is stackreldotm=2kg/s, Outer
Consider the encased pipe of Problem 4.29, but now allow tor the difference between the mean temperature of the fluid, which changes along the pipe length, and that of the pipe.
(a) For the prescribed values of k, D, w, h, and
T
∞
and a pipe of length
L
=
1
00
m
. what is the outlet temperature
T
m
,
o
of water that enters the pipe at a temperature of
T
m
,
i
=
90
°C and a how rate of
m
=
2 kg
/
s
?
(b) What is the pressure drop of the water and the corresponding pump power requirement?
(c) Subject to the constraint that the width of the duct is fixed at
w
=
0.
3
0
m
, explore the effects of the flow rate and the pipe diameter on the outlet temperature.
P1
D2
D1
The last 40 °C until the water vapor pressure in the tube shown in Figure 0.75t/m2d. Be that atmospheric pressure in the high current 68 cm-Hg-column, one section of diameter D60 em. the
second section of diameter D = 14 cm, the first pressure value in the section P-0.35 kg / cm by that the cavitation neglecting the energy losses Determine the flow rate to start.
system.
Note: Use a period () as a decimal separator in your auswers. Otherwise, even if your result is correct, it will be considered incorreet by the
3.
/sec
im
Q=
A saturated steam at 410K is being transported in a pipeline (brass drawing tubing) at a rate of 1 grams/second. Pipe has inside diameter of 0.025 m . The tube is 100m long. The pressure at the entrance is 80kPa. What is the value of G in kg/s.m2?. (use Perry's Handbook for the properties and constants) R = 8314J/kgmol.K; MW=18.02g/mol
Water (at 20C) flows through a pipeline connected in series, as shown in the Figure. The construction material of the pipes is commercial steel. Diameters of the first and second pipe are 1¼ inch nominal (42.4/3.25 mm) and ¾ inch nominal(26.9/2.65 mm), respectively. No elevation difference exits in the system. If the pressures at point A and at point B are 12.63 mWH absolute and 10.33 mWH absolute, respectively, what is the volumetric flow rate in the pipeline? Neglect the contraction losses in the connection of two pipes.Note: Friction factor must be found from MOODY DIAGRAM. For simplification in the reading of Moody diagram, take relative roughness of each pipe as: E/D1=0.001 and E/D2=0.002Figure Q2.1. Schematic illustration of the series-connected pipeline system.Figure Q2.2. Moody diagram
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