Answer:
a) 0.0018lbm/s, 34.56ft/s
b) 74.4 btu/lbm, 1156.2 btu/lbm
c) 2.06 btu/s
Explanation:
The amount of liquid that gas evaporated
m = ΔV(liq)/V(f)
From table (A-5E) at 20psia,
V(f) = 0.01683 ft³/lbm
V(g) = 20.093 ft³/lbm
U(g) = 1081.8 btu/lbm
H(g) = 1156.2 btu/lbm
m = 0.6/0.01683 = 35.65 gal.lbm/ft³
Converting to lbm
35.65gal.lbm/ft³ * 0.13368 ft³/gal
m = 4.77lbm
Mass flow rate of the steam, m' = m/Δt
Converting time, t to seconds. 45mins = 45*60s = 2700s
m' = 4.77/2700 = 0.0018 lbm/s
Exit velocity of steam, is calculated as
V = m'V(g)/A(c)
V = 0.0018 * 20.093/0.15
V = 0.036/0.15
V = 0.24 * 144 = 34.56ft/s
Flow energy of the exit steam = E
E = PV = h - u
E(flow) = h(g) - u(g)
E(flow) = 1156.2 - 1081.8
E(flow) = 74.4 btu/lbm
Total energies of the exit steam =
E(total) = h + KE + PE
E(total) ~ h
E(total) = 1156.2 btu/lbm
Rate at which energy is leaving the cooker is
E' = m'E(total)
E'= 0.0018 * 1156.2
E' = 2.06 btu/s
