Which of the following is correct in terms of increasing work done for the same initial and final state?

  • A
    Adiabatic < Isothermal < Isobaric
  • B
    Isobaric < Adiabatic < Isothermal
  • C
    Adiabatic < Isobaric < Isothermal
  • D
    None of these

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Similar Questions

Match the following:
List-$I$List-$II$
$i)$ Isothermal process$a)$ $0$
$ii)$ Isobaric process$b)$ $\frac{1}{\gamma-1}[P_2 V_2 - P_1 V_1]$
$iii)$ Isochoric process$c)$ $\mu RT \ln(\frac{V_2}{V_1})$
$iv)$ Adiabatic process$d)$ $P(V_2 - V_1)$

The correct answer is:

Two samples $A$ and $B$ of a gas,initially at the same pressure and temperature,are compressed from volume $V$ to $V/2$. Sample $A$ is compressed isothermally,and sample $B$ is compressed adiabatically. The final pressure of $A$ is:

$A$ cyclic process is shown in the $p-v$ diagram. Which of the following statement$(s)$ is/are true?

For the given $P-V$ diagram of a thermodynamic system,match the curves with their respective thermodynamic processes. ($P$ = Pressure and $V$ = Volume)
CurveProcess
$I$$a)$ Adiabatic
$II$$b)$ Isobaric
$III$$c)$ Isochoric
$IV$$d)$ Isothermal

An ideal gas expands isothermally from volume $V_1$ to volume $V_2$. It is then compressed to the original volume $V_1$ adiabatically. If $p_1$ and $p_2$ represent the initial pressure and final pressure respectively, and $W$ represents the net work done by the gas during the entire process, then:

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