Answer:
T3 = 1144 K
Step-by-step explanation:
In process 1, we are given;
P1 = 1.1 MPa = 1100 KPa
T1 = 299°C and it's constant
We are told that Final volume is twice the initial volume.
Thus, V2 = 2V1
Now, from ideal gas equation,using Boyles law we know that ;
P1•V1 = P2•V2
Thus, let's make P2 the subject;
P2 = P1•V1/V2
V2 = 2V1
Thus;
P2 = P1•V1/(2V1)
V1 will cancel out to give;
P2 = P1/2
Thus,P2 = 1100/2
P2 = 550 KPa
Now, for process 2-3;
The temperature in process 1 was constant and thus T1 = T2 = 299°C. Also, since ideal gas behavior, P3 = P1 = 1100 KPa
Since, we are to find the temperature T3 in kelvins.
Let's convert T2 into kelvins.
So, T2 = 299 + 273 K = 572 K
So, from ideal gas equations again ;
But this time volume is the one that is constant. Thus;
P2/T2 = P3/T3
T3 = P3•T2/P2
Thus;
T3 = 1100•572/550
T3 = 1144 K