06. Adiabatic Process
NEET Test Series from KOTA - 10 Papers In MS WORD WhatsApp Here
Thermodynamics

148466 A diatomic gas of volume $2 \mathrm{~m}^{3}$ at a pressure $2 \times$ $10^{5} \mathrm{~N} / \mathrm{m}^{2}$ is compressed adiabatically to a volume $0.5 \mathrm{~m}^{3}$. The work done in this process is.
[Use $4^{1.4}=6.96$ ]

1 $2.96 \times 10^{5} \mathrm{~J}$
2 $-2.96 \times 10^{5} \mathrm{~J}$
3 $-7.4 \times 10^{5} \mathrm{~J}$
4 $7.4 \times 10^{5} \mathrm{~J}$
Thermodynamics

148468 One liter of a gas (with $\gamma=\frac{5}{3}$ ) at NTP is compressed adiabatically to one cubic centimeter, then the resulting pressure is :

1 $10 \mathrm{Atm}$
2 $10^{3} \mathrm{Atm}$
3 $10^{5} \mathrm{Atm}$
4 $100 \mathrm{Atm}$
Thermodynamics

148469 For a gas of non rigid diatomic molecules, the value of $\gamma=\frac{C_{p}}{C_{v}}$ is :

1 $\frac{9}{7}$
2 $\frac{7}{5}$
3 $\frac{5}{3}$
4 $\frac{11}{9}$
Thermodynamics

148470 P-V plots for gases during adiabatic process as shown in figure plot 1 and 2 should correspond respectively to

1 $\mathrm{He}$ and $\mathrm{O}_{2}$
2 $\mathrm{O}_{2}$ and $\mathrm{He}$
3 $\mathrm{He}$ and $\mathrm{Ar}$
4 $\mathrm{O}_{2}$ and $\mathrm{N}_{2}$
Thermodynamics

148466 A diatomic gas of volume $2 \mathrm{~m}^{3}$ at a pressure $2 \times$ $10^{5} \mathrm{~N} / \mathrm{m}^{2}$ is compressed adiabatically to a volume $0.5 \mathrm{~m}^{3}$. The work done in this process is.
[Use $4^{1.4}=6.96$ ]

1 $2.96 \times 10^{5} \mathrm{~J}$
2 $-2.96 \times 10^{5} \mathrm{~J}$
3 $-7.4 \times 10^{5} \mathrm{~J}$
4 $7.4 \times 10^{5} \mathrm{~J}$
Thermodynamics

148468 One liter of a gas (with $\gamma=\frac{5}{3}$ ) at NTP is compressed adiabatically to one cubic centimeter, then the resulting pressure is :

1 $10 \mathrm{Atm}$
2 $10^{3} \mathrm{Atm}$
3 $10^{5} \mathrm{Atm}$
4 $100 \mathrm{Atm}$
Thermodynamics

148469 For a gas of non rigid diatomic molecules, the value of $\gamma=\frac{C_{p}}{C_{v}}$ is :

1 $\frac{9}{7}$
2 $\frac{7}{5}$
3 $\frac{5}{3}$
4 $\frac{11}{9}$
Thermodynamics

148470 P-V plots for gases during adiabatic process as shown in figure plot 1 and 2 should correspond respectively to

1 $\mathrm{He}$ and $\mathrm{O}_{2}$
2 $\mathrm{O}_{2}$ and $\mathrm{He}$
3 $\mathrm{He}$ and $\mathrm{Ar}$
4 $\mathrm{O}_{2}$ and $\mathrm{N}_{2}$
Thermodynamics

148466 A diatomic gas of volume $2 \mathrm{~m}^{3}$ at a pressure $2 \times$ $10^{5} \mathrm{~N} / \mathrm{m}^{2}$ is compressed adiabatically to a volume $0.5 \mathrm{~m}^{3}$. The work done in this process is.
[Use $4^{1.4}=6.96$ ]

1 $2.96 \times 10^{5} \mathrm{~J}$
2 $-2.96 \times 10^{5} \mathrm{~J}$
3 $-7.4 \times 10^{5} \mathrm{~J}$
4 $7.4 \times 10^{5} \mathrm{~J}$
Thermodynamics

148468 One liter of a gas (with $\gamma=\frac{5}{3}$ ) at NTP is compressed adiabatically to one cubic centimeter, then the resulting pressure is :

1 $10 \mathrm{Atm}$
2 $10^{3} \mathrm{Atm}$
3 $10^{5} \mathrm{Atm}$
4 $100 \mathrm{Atm}$
Thermodynamics

148469 For a gas of non rigid diatomic molecules, the value of $\gamma=\frac{C_{p}}{C_{v}}$ is :

1 $\frac{9}{7}$
2 $\frac{7}{5}$
3 $\frac{5}{3}$
4 $\frac{11}{9}$
Thermodynamics

148470 P-V plots for gases during adiabatic process as shown in figure plot 1 and 2 should correspond respectively to

1 $\mathrm{He}$ and $\mathrm{O}_{2}$
2 $\mathrm{O}_{2}$ and $\mathrm{He}$
3 $\mathrm{He}$ and $\mathrm{Ar}$
4 $\mathrm{O}_{2}$ and $\mathrm{N}_{2}$
NEET Test Series from KOTA - 10 Papers In MS WORD WhatsApp Here
Thermodynamics

148466 A diatomic gas of volume $2 \mathrm{~m}^{3}$ at a pressure $2 \times$ $10^{5} \mathrm{~N} / \mathrm{m}^{2}$ is compressed adiabatically to a volume $0.5 \mathrm{~m}^{3}$. The work done in this process is.
[Use $4^{1.4}=6.96$ ]

1 $2.96 \times 10^{5} \mathrm{~J}$
2 $-2.96 \times 10^{5} \mathrm{~J}$
3 $-7.4 \times 10^{5} \mathrm{~J}$
4 $7.4 \times 10^{5} \mathrm{~J}$
Thermodynamics

148468 One liter of a gas (with $\gamma=\frac{5}{3}$ ) at NTP is compressed adiabatically to one cubic centimeter, then the resulting pressure is :

1 $10 \mathrm{Atm}$
2 $10^{3} \mathrm{Atm}$
3 $10^{5} \mathrm{Atm}$
4 $100 \mathrm{Atm}$
Thermodynamics

148469 For a gas of non rigid diatomic molecules, the value of $\gamma=\frac{C_{p}}{C_{v}}$ is :

1 $\frac{9}{7}$
2 $\frac{7}{5}$
3 $\frac{5}{3}$
4 $\frac{11}{9}$
Thermodynamics

148470 P-V plots for gases during adiabatic process as shown in figure plot 1 and 2 should correspond respectively to

1 $\mathrm{He}$ and $\mathrm{O}_{2}$
2 $\mathrm{O}_{2}$ and $\mathrm{He}$
3 $\mathrm{He}$ and $\mathrm{Ar}$
4 $\mathrm{O}_{2}$ and $\mathrm{N}_{2}$