A 3-m-internal-diameter spherical tank made of 1-cm-thick stainless steel is use to store iced water at 0 o C . The tank is located outdoors at 25 o C . Assuming the entire steel tank to be at 0 o C and thus the thermal resistance of the tank to be negligible, determine (a) the rate of heat transfer to the iced water in the tank and (b) the amount of ice at 0 o C that melts during a 24-h period. The heat of fusion of water at atmospheric pressure is h i f = 333.7 kJ/kg . and The emissivity of the outer surface of the tank is 0.75, and the convection heat transfer coefficient on the outer surface can be taken to be 30 W/m 2 . K . Assume the average surrounding surface temperature for radiation exchange to be 15 o C .
A 3-m-internal-diameter spherical tank made of 1-cm-thick stainless steel is use to store iced water at 0 o C . The tank is located outdoors at 25 o C . Assuming the entire steel tank to be at 0 o C and thus the thermal resistance of the tank to be negligible, determine (a) the rate of heat transfer to the iced water in the tank and (b) the amount of ice at 0 o C that melts during a 24-h period. The heat of fusion of water at atmospheric pressure is h i f = 333.7 kJ/kg . and The emissivity of the outer surface of the tank is 0.75, and the convection heat transfer coefficient on the outer surface can be taken to be 30 W/m 2 . K . Assume the average surrounding surface temperature for radiation exchange to be 15 o C .
A 3-m-internal-diameter spherical tank made of 1-cm-thick stainless steel is use to store iced water at
0
o
C
.
The tank is located outdoors at
25
o
C
.
Assuming the entire steel tank to be at
0
o
C
and thus the thermal resistance of the tank to be negligible, determine (a) the rate of heat transfer to the iced water in the tank and (b) the amount of ice at
0
o
C
that melts during a 24-h period. The heat of fusion of water at atmospheric pressure is
h
i
f
=
333.7
kJ/kg
.
and The emissivity of the outer surface of the tank is 0.75, and the convection heat transfer coefficient on the outer surface can be taken to be
30 W/m
2
.
K
.
Assume the average surrounding surface temperature for radiation exchange to be
15
o
C
.
of the basket of the balloon at point A, and their other ends are staked to the ground. The hook is located in the geometric
center of the basket. The balloon and the air inside it have a combined mass of 3000 kg. You want to determine the
resultant of the tension forces in the four cables acting on the hook at point A. It is known that the magnitudes of the
tension in the cables are as follows: TAB = 207 N; TAC = 355 N; TAD = 250 N; and TAE = 486 N.
B
E
2.5 m
C
E
5.5 m
D
2.5 m
3.5 m
1.5 m
Using the information provided in the problem, express the force on the hook at point A by cable AC in rectangular component form.
The force on the hook at point A by cable AC in rectangular component form is given below.
T AC
N) i+
N) +
N) R
Water in the glass tube is at a temperature of 40°C. Plot the height of the water as a function of the tube's inner diameter D for 0.5mm≤D≤3mm. Use increments of 0.5mm. Take sigma=69.6mN/m, and theta=0° for the contact angle.
Determine the distance h that the column of mercury in the tube will be depressed when the tube is inserted into the mercury at a room temperature of 68 F. Plot this relationship of h (vertical axis) versus D for 0.5 in≤D≤0.150in. Give values for increments of ΔD=0.025in. Discuss this result
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, mechanical-engineering and related others by exploring similar questions and additional content below.