JEE Exam  >  JEE Notes  >  I. E. Irodov Solutions for Physics Class 11 & Class 12  >  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE PDF Download

Q. 44. Demonstrate that the process in which the work performed by an ideal gas is proportional to the corresponding increment of its internal energy is described by the equation pVn = const, where n is a constant. 

Solution. 44. According to the problem : A α U or dA = aU (where a is proportionality constant)

or,    Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE                             (1)

From ideal gas law, pV= v R T, on differentiating

pdV + Vdp = v RdT                      (2)

Thus from (1) and (2) 

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Dividing both the sides by pV

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

On integrating n In V + In p = In C (where C is constant) 

or, Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 45. Find the molar heat capacity of an ideal gas in a polytropic process pVn = const if the adiabatic exponent of the gas is equal to γ. At what values of the polytropic constant n will the heat capacity of the gas be negative? 

Solution. 45. In the polytropic process work done by the gas

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(where Ti and Tf are initial and final temperature of the gas like in adiabatic process)

and    Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

By the first law of thermodynamics Q = ΔU + A 

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

According to definition of molar heat capacity when number of moles v = 1 and ΔT = 1 then Q = Molar heat capacity.

Here,    Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 46. In a certain polytropic process the volume of argon was increased α = 4.0 times. Simultaneously, the pressure decreased β = 8.0 times. Find the molar heat capacity of argon in this process, assuming the gas to be ideal.

Solution. 46. Let the process be polytropic according to the law pVn = constant

Thus,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

In the polytropic process molar heat capacity is given by

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 47. One mole of argon is expanded polytropically, the polytropic constant being n = 1.50. In the process, the gas temperature changes by ΔT = — 26 K. Find:
 (a) the amount of heat obtained by the gas;
 (b) the work performed by the gas

Solution. 47. (a) Increment of internal energy for ΔT, becomes

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

From first law of thermodynamics

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(b) Sought work done,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

 
Q. 48. An ideal gas whose adiabatic exponent equals y is expanded according to the law p = αV , where a is a constant. The initial volume of the gas is equal to V0. As a result of expansion the volume increases η times. Find:
 (a) the increment of the internal energy of the gas;
 (b) the work performed by the gas;
 (c) the molar heat capacity of the gas in the process.

Solution. 48. LaW 0f the process is p = α V or pV-1 = α
so the process is polytropic of index n = - 1
As p = αV so, Pi - αVand pf = α η V0

(a) Increment of the internal energy is given by

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(b) Work done by the gas is given by

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(c) Molar heat capacity is given by

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 49. An ideal gas whose adiabatic exponent equals γ is expanded so that the amount of heat transferred to the gas is equal to the decrease of its internal energy. Find:
 (a) the molar heat capacity of the gas in this process;
 (b) the equation of the process in the variables T, V;
 (c) the work performed by one mole of the gas when its volume increases η times if the initial temperature of the gas is T0

Solution. 49.  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

where Cn is the molar heat capacity in the process. It is given that  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(b) By the first law of thermodynamics, dQ - dU + dA,

or,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So,    Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(c)   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

But from part (a), we have  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Thus   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

From part (b); we know  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So, Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE (where T is the final temperature)

Work done by the gas for one mole is given by

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 50. One mole of an ideal gas whose adiabatic exponent equals y undergoes a process in which the gas pressure relates to the temperature as p = aTα, where a and α are constants. Find:
 (a) the work performed by the gas if its temperature gets an increment ΔT;
 (b) the molar heat capacity of the gas in this process; at what value of α will the heat capacity be negative? 

Solution. 50. Given p = a Tα (for one mole of gas)

So,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Here polytropic exponent  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(a) In the poly tropic process for one mole of gas :

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(b) Molar heat capacity is given by

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 51. An ideal gas with the adiabatic exponent γ undergoes a process in which its internal energy relates to the volume as U = aVα, where a and α  are constants. Find:
 (a) the work performed by the gas and the amount of heat to be transferred to this gas to increase its internal energy by ΔU;
 (b) the molar heat capacity of the gas in this process. 

Solution. 51.

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,    Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So polytropric index n = 1 - α

(a) Work done by the gas is given by

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Hence   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

By the first law of thermodynamics, Q = ΔU+A

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(b) Molar heat capacity is given by

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 52. An ideal gas has a molar heat capacity Cv at constant volume. Find the molar heat capacity of this gas as a function of its volume V, if the gas undergoes the following process: 

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Solution. 52. By the first law .of thermodynamics

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Molar specific heat according to definition

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

We have   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

After differentiating, we get  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Hence  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(b)   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 53. One mole of an ideal gas whose adiabatic exponent equals γ undergoes a process p = p0 + α /V, w here P0 and α are positive constants. Find:
 (a) heat capacity of the gas as a function of its volume;
 (b) the internal energy increment of the gas, the work performed by it, and the amount of heat transferred to the gas, if its volume increased from V1 to V2.

Solution. 53.  Using 2.52

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE (for one mole of gas)

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEEIrodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Therefore   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Hence  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(b) Work done is given by

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

By the first law of thermodynamics Q = ΔU +A

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 54. One mole of an ideal gas with heat capacity at constant pressure Cp undergoes the process T = T0 + αV, where T0  and α are constants. Find: 
 (a) heat capacity of the gas as a function of its volume;
 (b) the amount of heat transferred to the gas, if its volume increased from V1 to V2

Solution. 54. (a) Heat capacity is given by

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE   (see solution of 2.52)

We have  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

After differentiating, we get,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Hence   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(b)  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE for one mole of gas

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Now  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

By the first law of thermodynamics Q = ΔU + A

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 55. For the case of an ideal gas find the equation of the process (in the variables T, V) in which the molar heat capacity varies as:
 (a) C = Cv  + αT; (b) C = Cv + βV;  (c) C = Cv + ap, where α, β, and a are constants. 

Solution. 55. Heat capacity is given by  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Integrating both sides, we get  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE is a constant.

Or,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

and  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Integrating both sides, we get   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEEIrodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or     Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE  or V - a T = constant 


Q. 56. An ideal gas has an adiabatic exponent γ. In some process its molar heat capacity varies as C = α/T, where α is a constant. Find:
 (a) the work performed by one mole of the gas during its heating from the temperature T0 to the temperature η times higher; 
 (b) the equation of the process in the variables p, V. 

Solution. 56. (a) By the first law of thermodynamics A = Q - ΔU

or,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Given    Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So,    Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(b) Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Given   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,    Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Integrating both sides, we get

or, Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,    Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 57. Find the work performed by one mole of a Van der Waals gas during its isothermal expansion from the volume V1 to V2 at a temperature T. 

Solution. 57. The work done is

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 58. One mole of oxygen is expanded from a volume V1 = 1.00 1 to V2 = 5.0 l at a constant temperature T = 280 K. Calculate:
 (a) the increment of the internal energy of the gas: 
 (b) the amount of the absorbed heat.
 The gas is assumed to be a Van der Waals gas. 

Solution. 58. (a) The increment in the internal energy is

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

But from second law

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

On the other hand   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So,    Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(b) From the first law  

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 59. For a Van der Waals gas find:
 (a) the equation of the adiabatic curve in the variables T, V;
 (b) the difference of the molar heat capacities Cp, — Cv  as a function of T and V. 

Solution. 59.  (a) From the first law for an adiabatic

dQ = dU + pd V = 0

From the previous problem

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

This equation can be integrated if we assume that Cv and b are constant then

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

(b)  We use  

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Now,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So along constant p, Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Thus  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

On differentiating,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

and   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE


Q. 60. Two thermally insulated vessels are interconnected by a tube equipped with a valve. One vessel of volume V1 =  10 l contains v = 2.5 moles of carbon dioxide. The other vessel of volume V2 = 100 l is evacuated. The valve having been opened, the gas adiabatically expanded. Assuming the gas to obey the Van der Waals equation, find its temperature change accompanying the expansion. 

Solution. 60.  From the first law

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEEas the vessels are themally insulated. 

As this is free expansion,   Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

But  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

So,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

or,  Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

Substitution gives ΔT = - 3 K


Q. 61. What amount of heat has to be transferred to v = 3.0 moles of carbon dioxide to keep its temperature constant while it expands into vacuum from the volume V1 =  5.0 l to V2 = 10 l ? The gas is assumed to be a Van der Waals gas. 

Solution. 61. Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE (as A = 0 in free expansion).

So at constant temperature.

Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

= 0.33 kJ from the given data.

The document Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 | I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE is a part of the JEE Course I. E. Irodov Solutions for Physics Class 11 & Class 12.
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FAQs on Irodov Solutions: The First Law of Thermodynamics: Heat Capacity - 2 - I. E. Irodov Solutions for Physics Class 11 & Class 12 - JEE

1. What is the first law of thermodynamics?
Ans. The first law of thermodynamics, also known as the law of conservation of energy, states that energy cannot be created or destroyed in an isolated system. It can only be transferred or converted from one form to another.
2. How is heat capacity defined?
Ans. Heat capacity is defined as the amount of heat energy required to raise the temperature of a substance by one degree Celsius. It is a measure of the substance's ability to store thermal energy.
3. What is the significance of heat capacity in thermodynamics?
Ans. Heat capacity plays a crucial role in thermodynamics as it helps determine the amount of heat energy required to raise the temperature of a substance. It allows us to calculate the change in internal energy of a system and understand its behavior in response to heat transfer.
4. How is heat capacity different from specific heat capacity?
Ans. Heat capacity is the amount of heat energy required to raise the temperature of a substance, while specific heat capacity is the heat energy required to raise the temperature of a unit mass of the substance. Specific heat capacity is obtained by dividing the heat capacity by the mass of the substance.
5. Can heat capacity be negative?
Ans. No, heat capacity cannot be negative. It is always a positive value as it represents the amount of heat energy required to raise the temperature of a substance. A negative value would imply that the substance releases heat instead of absorbing it, which is not possible as per the first law of thermodynamics.
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