Consider the steam pipe of Example 1.2. The facilitiesmanager wants you to recommend methods for reducing the heat loss to the room, and two options are proposed. The first option would restrict air movementaround the outer surface of the pipe and thereby reducethe convection coefficient by a factor of two. The second option would coat the outer surface of the pipe witha low emissivity ( ∈ = 0.4 ) paint. (a) Which of the foregoing options would you recommend? (b) To prepare for a presentation of your recommendation to management, generate a graph of the heatloss q ′ as a function of the convection coefficient for 2 ≤ h ≤ 20 W/m 2 ⋅ K and emissivities of 0.2, 0.4, and 0.8. Comment on the relative efficacy ofreducing heat losses associated with convection andradiation.
Consider the steam pipe of Example 1.2. The facilitiesmanager wants you to recommend methods for reducing the heat loss to the room, and two options are proposed. The first option would restrict air movementaround the outer surface of the pipe and thereby reducethe convection coefficient by a factor of two. The second option would coat the outer surface of the pipe witha low emissivity ( ∈ = 0.4 ) paint. (a) Which of the foregoing options would you recommend? (b) To prepare for a presentation of your recommendation to management, generate a graph of the heatloss q ′ as a function of the convection coefficient for 2 ≤ h ≤ 20 W/m 2 ⋅ K and emissivities of 0.2, 0.4, and 0.8. Comment on the relative efficacy ofreducing heat losses associated with convection andradiation.
Solution Summary: The author explains the recommended method of reducing heat transfer coefficient to reduce the heat loss to the room.
Consider the steam pipe of Example 1.2. The facilitiesmanager wants you to recommend methods for reducing the heat loss to the room, and two options are proposed. The first option would restrict air movementaround the outer surface of the pipe and thereby reducethe convection coefficient by a factor of two. The second option would coat the outer surface of the pipe witha low emissivity
(
∈
=
0.4
)
paint. (a) Which of the foregoing options would you recommend? (b) To prepare for a presentation of your recommendation to management, generate a graph of the heatloss
q
′
as a function of the convection coefficient for
2
≤
h
≤
20
W/m
2
⋅
K
and emissivities of 0.2, 0.4, and 0.8. Comment on the relative efficacy ofreducing heat losses associated with convection andradiation.
Q5:(?
Design the duct system of the figure below by using the balanced pressure method.
The velocity in the duct attached to the AHU must not exceed 5m/s. The pressure
loss for each diffuser is equal to 10Pa.
100CFM
100CFM
100CFM
☑
☑
40m
AHU
-16m-
8m-
-12m-
57m
250CFM
40m
-14m-
26m
36m
☑
250CFM
A mass of ideal gas in a closed piston-cylinder system expands from 427 °C and 16 bar following the process law, pv1.36 = Constant (p times v to the power of 1.36 equals to a constant). For the gas, initial : final
pressure ratio is 4:1 and the initial gas volume is 0.14 m³. The specific heat of the gas at constant pressure, Cp = 0.987 kJ/kg-K and the specific gas constant, R = 0.267 kJ/kg.K.
Determine the change in total internal energy in the gas during the expansion. Enter your numerical answer in the answer box below in KILO JOULES (not in Joules) but do not enter the units. (There is no
expected number of decimal points or significant figures).
my ID# 016948724. Please solve this problem step by step
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