n moles of a diatomic gas has undergone a cyclic process ABC as shown in figure. Temperature at a is `T_(0)`. Find a. Volume at C ? b. Maximum temperature ? c. Total heat given to gas ? d. Is heat rejected by the gas, if yes how much heat is rejected ? e. Find out the efficiency

n moles of a diatomic gas has undergone a cyclic process ABC as shown

1.	n moles of a diatomic gas has undergone a cyclic process ABC as shown in figure. Temperature at a is `T_(0)`. Find a. Volume at C ? b. Maximum temperature ? c. Total heat given to gas ? d. Is heat rejected by the gas, if yes how much heat is rejected ? e. Find out the efficiency
Answer» Since triangle `O A V_(0)` and OC V are similar therefore `(2P_(0))/(V) = (P_(0))/(V_(0)) implies V = 2 v_(0)` b. Since process AB is isochoric hence `(P_(A))/(T_(A)) = (P_(B))/(T_(B)) implies T_(B) = 2T_(0)` Since process BC is isobaric therefore `(T_(B))/(V_(B)) = (T_(C))/(V_(C ))` `implies T_(C ) = 2 T_(B) = 4 T_(0)` Since process is cyclic therefore `Delta Q = Delta w`= area under the cycle ` =(1)/(2) P_(0) V_(0)`. d. Since `Delta u` and `Delta W` both are negative in process CA `:. Delta Q` is negative in process ca and heat is rejected in process CA `Delta Q_(CA) = Delta W_(CA) + Delta U_(CA)` `= - (1)/(20) [P_(0) + 2 P_(0)] V_(0) - (5)/(2) nr (T_(c ) - T_(a))` `= -(1)/(2) [P_(0) + 2 P_(0)] V_(0) - (5)/(2) nR ((4 P_(0) V _(0))/(nR) - (P_(0) V_(0))/(nR))` `= - 9 P_(0) V_(0) =` Heat injected. e. `eta = ` efficiency of the cycle `= ("work done by the gas")/("heat injected") = eta = (P_(0) V_(0)//2)/(Q_("injected") xx 100` `Delta Q_("inj") = Delta W_(AB) + Delta U_(BC)` ` = [(5)/(2) nr (2T_(0) - T_(0))] + [(5)/(2) nRT (2 T_(0)) + 2P_(0) (2V_(0) - V_(0))]` `(19)/(2) P_(0) V_(0)`

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n moles of a diatomic gas has undergone a cyclic process ABC as shown in figure. Temperature at a is `T_(0)`. Find a. Volume at C ? b. Maximum temperature ? c. Total heat given to gas ? d. Is heat rejected by the gas, if yes how much heat is rejected ? e. Find out the efficiency

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