A row of regularly spaced, cylindrical healing elements (1) is used to cure a surface coating that is applied to a large panel (2) positioned below the elements. A second large panel (3), whose top surface is well insulated, is positioned above the elements. The elements are black and maintained at T 1 = 600 K , while the panel has an emissivity of ε 2 = 0.5 and is maintained at T 2 = 400 K . The cavity is tilled with a nonparticipating gas and convection heat transfer occurs a surfaces 1 and 2, with h ¯ 1 = 10 W/m 2 ⋅ K and h ¯ 2 = 2 W/m 2 ⋅ K . (Convection at the Insulated panel may be neglected.) (a) Evaluate the mean gas temperature, T m . (b) What is the rate per Unit axial length at which electrical energy must be supplied to each element to maintain its prescribed temperature? (c) What is the rate of heat transfer to a portion of the coated panel that is 1 m wide by 1 m long?
A row of regularly spaced, cylindrical healing elements (1) is used to cure a surface coating that is applied to a large panel (2) positioned below the elements. A second large panel (3), whose top surface is well insulated, is positioned above the elements. The elements are black and maintained at T 1 = 600 K , while the panel has an emissivity of ε 2 = 0.5 and is maintained at T 2 = 400 K . The cavity is tilled with a nonparticipating gas and convection heat transfer occurs a surfaces 1 and 2, with h ¯ 1 = 10 W/m 2 ⋅ K and h ¯ 2 = 2 W/m 2 ⋅ K . (Convection at the Insulated panel may be neglected.) (a) Evaluate the mean gas temperature, T m . (b) What is the rate per Unit axial length at which electrical energy must be supplied to each element to maintain its prescribed temperature? (c) What is the rate of heat transfer to a portion of the coated panel that is 1 m wide by 1 m long?
Solution Summary: The equation for the energy balance equation is given by, lstackrel
A row of regularly spaced, cylindrical healing elements (1) is used to cure a surface coating that is applied to a large panel (2) positioned below the elements. A second large panel (3), whose top surface is well insulated, is positioned above the elements. The elements are black and maintained at
T
1
=
600
K
, while the panel has an emissivity of
ε
2
=
0.5
and is maintained at
T
2
=
400
K
. The cavity is tilled with a nonparticipating gas and convection heat transfer occurs a surfaces 1 and 2, with
h
¯
1
=
10
W/m
2
⋅
K
and
h
¯
2
=
2
W/m
2
⋅
K
. (Convection at the Insulated panel may be neglected.)
(a) Evaluate the mean gas temperature, Tm. (b) What is the rate per Unit axial length at which electrical energy must be supplied to each element to maintain its prescribed temperature? (c) What is the rate of heat transfer to a portion of the coated panel that is 1 m wide by 1 m long?
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Two large tanks, each holding 100 L of liquid, are interconnected by pipes, with the liquid flowing from tank
A into tank B at a rate of 3 L/min and from B into A at a rate of 1 L/min (see Figure Q1). The liquid inside each
tank is kept well stirred. A brine solution with a concentration of 0.2 kg/L of salt flows into tank A at a rate of
6 L/min. The diluted solution flows out of the system from tank A at 4 L/min and from tank B at 2 L/min. If,
initially, tank A contains pure water and tank B contains 20 kg of salt.
A
6 L/min
0.2 kg/L
x(t)
100 L
4 L/min
x(0) = 0 kg
3 L/min
B
y(t)
100 L
y(0) = 20 kg
2 L/min
1 L/min
Figure Q1 - Mixing problem for interconnected tanks
Determine the mass of salt in each tank at time t > 0:
Analytically (hand calculations)
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