One mole of an ideal gas does 3000 J of work on its surroundings as it expands isothermally to a final pressure of 1.00 atm and volume of 250 L. What is the initial volume and the temperature of the gas?

Question

One mole of an ideal gas does 3000 J of work on its surroundings as it expands isothermally to a final pressure of 1.00 atm and volume of 250 L. What is the initial volume and the temperature of the gas?

1 Answer

Impact of this question

24540 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2016-01-28T18:07:22

First, let's note a few important conditions:

Isothermal means the temperature is held constant, so $color(green)(DeltaT = 0)$ .

In these conditions, there is no change in enthalpy $DeltaH$ nor any change in internal energy $DeltaU$ . Not sure if we need it, but we should know that $color(blue)(DeltaH = DeltaU = 0)$ for an ideal gas if $DeltaT = 0$ .

We are given final pressure but not initial pressure, and final volume but not initial volume. So, we would probably have to manipulate the Ideal Gas Law $PV = nRT$ for $T$ , and maybe something to do with the work function for $V_1$ .

REVERSIBLE WORK VS VOLUME

Now, we should know that reversible (efficient) work is defined as:

$\mathbf(w_"rev" = -intPdV)$

For this problem, the depiction in a PV-diagram goes like this:

However, since we do not know $DeltaP$ and the equation had assumed that $DeltaP = 0$ (note that we are integrating with respect to volume, not pressure), we have use the Ideal Gas Law to rewrite the above equation as:

$w_"rev" = -int_(V_1)^(V_2)(nRT)/VdV$

Since $DeltaT = 0$ , $nRT$ is a constant. Let's pull it out of the integral.

$w_"rev" = -nRTint_(V_1)^(V_2)1/VdV$

$= -nRTln|V_2/V_1|$

At this point, the shape of the PV-diagram curve looks sensible; it resembles the shape of a $-lnx$ curve.

THE INITIAL VOLUME FOR THE EXPANSION

We are given the work, so we should be able to solve for the initial volume, $V_1$ , using this equation. Since expansion work has been done by the gas, meaning that $V_2 > V_1$ , we know that $color(green)(w_"rev" < 0)$ , numerically.

That makes sense because $ln|V_2/V_1|$ when $V_2/V_1 > 1$ is positive. Now let's get an expression for $V_1$ .

$-w_"rev"/(nRT) = ln|V_2/V_1|$

$e^(-w_"rev""/"nRT) = V_2/V_1$

$e^(w_"rev""/"nRT) = V_1/V_2$

$color(green)(V_1 = V_2e^(w_"rev""/"nRT))$

However, we do not know the temperature yet, so we'll have to put off calculating the initial volume for a bit longer.

THE TEMPERATURE FOR THE EXPANSION

Something we do know is that the temperature remained constant, so $T_2 = T_1$ . Thus, we have these two relationships that cover the initial and final states:

$P_1V_1 = color(blue)(nR)T$
$color(blue)(P_2V_2) = color(blue)(nR)T$

We know the values of what is in blue, which is enough.

$color(blue)(T) = (P_2V_2)/(nR) = (("1 atm")("250 L"))/(("1 mol")("0.082057 L"cdot"atm/mol"cdot"K"))$

$=$ $color(blue)("3046.66 K")$

Now we can find the initial volume:

$color(blue)(V_1) = ("250 L")e^((-"3000 J")"/"[("1 mol")("8.314472 J/mol"cdot"K")("3046.66 K")]$

$=$ $color(blue)("222.08 L")$

(As an aside, if you were curious, the initial pressure was about $"1.126 atm"$ , from the Ideal Gas Law.)

Science

Math

Humanities

... and beyond

One mole of an ideal gas does 3000 J of work on its surroundings as it expands isothermally to a final pressure of 1.00 atm and volume of 250 L. What is the initial volume and the temperature of the gas?

1 Answer

Related questions

Impact of this question