Answer:
[tex]\Delta S = S_2-S_1 = 0.08835 \frac {BTU} {Lb ^ {\circ} R}[/tex]
Explanation:
A) In order to solve the table it is necessary to consult tables A11-E and A10E for refrigerant R134-a
In this way we obtain that:
[tex]S_1 = S_f = 0.0648 \frac {BTU} {Lb. ^ {\circ} R}[/tex]
In this way,
[tex]S_2 = S_f + x_2 (S_g-S_f) = 0.0902 + 0.5 (0.2161-0.0902)[/tex]
[tex]S_2 = 0.15315 \frac {BTU} {Lb ^ {\circ} R}[/tex]
In this way the entropy change is,
[tex]\Delta S = S_2-S_1 = 0.08835 \frac {BTU} {Lb. ^ {\°} R}[/tex]
B) Whenever entropy yields a positive result, the process can be carried out adiabatically.
