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.
The differential equation of a cruise control system is provided by the following equation:
Find the closed loop transfer function with respect to the reference velocity (vr) .
a. Find the poles of the closed loop transfer function for different values of K. How does the poles move as you change K?
b. Find the step response for different values of K and plot in MATLAB. What can you observe?
c. For the given transfer function, find tp, ts, tr, Mp . Plot the resulting step response. G(s) = 40/(s^2 + 4s + 40)
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Perform the partial fraction expansion of the following transfer function and find the impulse response:
G(s) = (s/2 + 5/3) / (s^2 + 4s + 6)
G(s) =( 6s^2 + 50) / (s+3)(s^2 +4)
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The 150-lb skater passes point A with a speed of
6 ft/s. (Figure 1)
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Part A
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Determine his speed when he reaches point B. Neglect friction.
Express your answer to three significant figures and include the appropriate units.
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Part B
Determine the normal force exerted on him by the track at this point.
Express your answer to three significant figures and include the appropriate units.
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