A spherical tank is filled with ice slurry, where its inner surface is at 0°C. The tank has an inner diameter of 9 m, and its wall thickness is 20 mm. The tank wall is made of a material with a thermal conductivity given as k ( T ) = k 0 ( 1 + β T ) where k 0 = 0.33 W/m .K, β = 0.0025 K -1 , a n d T is in K . and The temperature outside the tank is 35°C, and the convection heat transfer coefficient is 70 W/m 2 ⋅K. Solar radiation is incident on the tank’s outer surface at a rate of 150 W/m 2 , where the emissivity and solar absorptivity of the outer surface are 0.75. Determine the outer surface temperature of the tank.
A spherical tank is filled with ice slurry, where its inner surface is at 0°C. The tank has an inner diameter of 9 m, and its wall thickness is 20 mm. The tank wall is made of a material with a thermal conductivity given as k ( T ) = k 0 ( 1 + β T ) where k 0 = 0.33 W/m .K, β = 0.0025 K -1 , a n d T is in K . and The temperature outside the tank is 35°C, and the convection heat transfer coefficient is 70 W/m 2 ⋅K. Solar radiation is incident on the tank’s outer surface at a rate of 150 W/m 2 , where the emissivity and solar absorptivity of the outer surface are 0.75. Determine the outer surface temperature of the tank.
Solution Summary: The author calculates the rate of heat transfer through a spherical layer having variable thermal conductivity.
A spherical tank is filled with ice slurry, where its inner surface is at 0°C. The tank has an inner diameter of 9 m, and its wall thickness is 20 mm. The tank wall is made of a material with a thermal conductivity given as
k
(
T
)
=
k
0
(
1
+
β
T
) where
k
0
=
0.33
W/m
.K,
β
=
0.0025
K
-1
,
a
n
d
T
is in K
.
and The temperature outside the tank is 35°C, and the convection heat transfer coefficient is 70 W/m2 ⋅K. Solar radiation is incident on the tank’s outer surface at a rate of 150 W/m2 , where the emissivity and solar absorptivity of the outer surface are 0.75. Determine the outer surface temperature of the tank.
Consider the heat engine operating at steady state between the two thermal reservoirs shown at the right while producing a net power output of 700 kW. If 1000 kW of heat (Q̇H) is transferred to the heat engine from a thermal reservoir at a temperature of TH = 900 K, and heat is rejected to a thermal reservoir at a temperature of TL = 300 K, is this heat engine possible?
Can you answer this question for me and show all of the work
1.12 A disk of constant radius r is attached to a telescoping rod that is
extending at a constant rate as shown in Fig. P1.12. Both the disk
and the rod are rotating at a constant rate. Find the inertial
velocity and acceleration of point P at the rim of the disk.
ท2
L
0
SS
P
α
e
0
O'
êL
Fig. P1.12 Rotating disk attached to telescoping rod.
60 LL
Two different options A and B with brake pads for disc brakes are connected to the rope drum. The diameter of the rope drum is 150 mm. What distance must the pads B be at from the center of rotation to cover the same distance as A?A B- Width 50 mm - Width 60 mm- Evidence center 120mm - Construction power 900 N from rotation center.- Maintains a weight of 200 kgwhen the installation force is 1.4kN
(μ is missing from the data)M=μF(Ry-Ri)Right answer R=187 mm
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