Solution First Law for Transient Open Systems
An evaporator in a home refrigerator has a
volume of 0.8 ft3, and operates at a constant
pressure of 20 psia. The inlet to the
evaporator is R-134a at a pressure of 20 psia
and a quality of 40%. The evaporator exit is
saturated R-134a vapor (quality = 100%) at a
pressure of 20 psia. Initially the evaporator
contains 0.4 lbm of R-134a. Compute the heat
transfer if 0.01 lbm of R-134a enters the
evaporator (at the inlet conditions) and the
amount of saturated R-134a vapor leaving the
evaporator outlet is 0.03 lbm.
The system boundary, defined by the dashed line
in the figure, has one inlet and one outlet. In general, we have an unsteady problem because
more mass enters the system than leaves it. The general first law equation for unsteady open
systems is shown below.
inl et i
i
ii
outlet i
i
ii
u
system
gz
V
hmgz
V
hm
WQgz
V
umgz
V
um
22
22
22
1
2
1
2
2
2
We see that there is no mechanism for useful work in this system so we set Wu = 0 and make the
usual assumption that kinetic and potential energy terms are zero. This gives the following
expression for the first law for our system with one inlet and one outlet.
outoutinin
system hmhmQumumumum 11221122
Solving this equation for the heat transfer gives:
ininoutout hmhmumumQ 1122
. We
can simplify the general the mass balance equation for this problem where there is only one
outlet and one inlet. This gives the following result.
outin
outlet i
inlet i
system mmmmmmmm 1212
We are given that m1 = 0.4 lbm, min = 0.01 lbm, and mout = 0.03 lbm. Thus we can calculate the
final mass remaining in the evaporator, m2, from the mass-balance equation.
mmmmmoutin lblblblblbmmmm 38.003.001.04.0
12
.
From the data that Pin = Pout = 20 psia, xin =40%, and the outlet state is saturated vapor, we can
find the values of hin = hf(20 psia a) + 0.4hfg(20 psia) = 75.14 Btu/lbm + 0.4(91.29 Btu/lbm) =
111.66 Btu/lbm. Since the outlet is saturated vapor we have hout = hg(20 psia) = 166.42 Btu/lbm.
Inflow: 0.01 lbm at
20 psia, x = 40%
Condenser
V = 100 ft3
P = 2 psia =
P1 = P2
m1 = 50 lbm
Q
Outflow
0.03 lbm
20 psia.
sat vap,
Evaporator
V = 0.8 ft3
Pin = Pout = P1 =
P2 = 20 psia
m1 = 0.4 lbm
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