0.2moles of an ideal gas, is taken around the cycle abc as shown in the figure. The path b-c is adiabatic process, a-b is isovolumic process and c-a is isobaric process. The temperature at a and b are `T_(A)=300K` and `T_(b)=500K` and pressure at a is 1 atmospere. find the volume at c. (Given, `gamma=(C_(p))/(C_(v))=(5)/(3),R=8.205xx10^(-2)L`/atm/mol-K) A. 6.9LB. 6.68LC. 5.52LD. 5.82L

0.2moles of an ideal gas, is taken around the cycle abc as shown in th

1.	0.2moles of an ideal gas, is taken around the cycle abc as shown in the figure. The path b-c is adiabatic process, a-b is isovolumic process and c-a is isobaric process. The temperature at a and b are `T_(A)=300K` and `T_(b)=500K` and pressure at a is 1 atmospere. find the volume at c. (Given, `gamma=(C_(p))/(C_(v))=(5)/(3),R=8.205xx10^(-2)L`/atm/mol-K) A. 6.9LB. 6.68LC. 5.52LD. 5.82L
Answer» Correct Answer - b From a-b, volume is constnat `(p_(s))/(T_(a))=(P_(b))/(T_(b))` `P_(b)=(500)/(300)xx1=(6)/(3)` atm For b-c, adiabatic process `(T_(c))/(T_(b))=((P_(c))/(P_(b)))^((gamma-1)/(gamma))=[(1)/(5//3)]^((5//3-1)/(5//3))=((3)/(5))^(2//5)` Also, `p_(b)V_(b)^(gamma)=p_(c)V_(c)^(gamma)` `V_(c)=(V_(b))((p_(b))/(p_(c)))^(1//gamma)` `=(4.928)((5//3)/(1))^(3//5)`=6.68litre

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