Ideal gas law/Tutorials: Difference between revisions

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<!--*  1 bar = 0.98692 atm -->
<!--*  1 bar = 0.98692 atm -->
== Example problems ==
== Example problems ==
''See also the tutorials on the [[Ideal gas law/Video|Video subpage]].''
===Problem 1===
===Problem 1===
Determine the volume of 1 mol of ideal gas at pressure 1 atm and temperature 20 °C.
Determine the volume of 1 mol of ideal gas at pressure 1 atm and temperature 20 °C.
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     {\mathrm{atm}} \right]
     {\mathrm{atm}} \right]
= 24.0550 \quad [\mathrm{L}]
= 24.0550 \quad [\mathrm{L}]
</math>


</math>
===Problem 2===
===Problem 2===
Compute from Charles' and Gay-Lussac's law (''V''/''T'' is constant) the volume of an ideal gas at 1 atm and 0 °C (Use the final result of the previous problem). Write ''V''<sub>''T''</sub> for the volume at ''T'' °C, then
Compute from Charles' and Gay-Lussac's law (''V''/''T'' is constant) the volume of an ideal gas at 1 atm and 0 °C (Use the final result of the previous problem). Write ''V''<sub>''T''</sub> for the volume at ''T'' °C, then
:<math>
:<math>
\frac{V_{20}}{273.15+20} = \frac{V_0}{273.15+0} \quad\Longrightarrow
\frac{V_{20}}{273.15+20} = \frac{V_0}{273.15+0} \quad\Longrightarrow
V_0  = 273.15 \times \frac{24.0550}{298.15} = 22.4139\; \;[\mathrm{L}]
V_0  = 273.15 \times \frac{24.0550}{293.15} = 22.4139\; \;[\mathrm{L}]
</math>
</math>


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A certain amount of gas that has an initial pressure of 1 atm and an initial volume of 2 L, is compressed to a final pressure of 5 atm at constant temperature.  What is the final volume of the gas?
A certain amount of gas that has an initial pressure of 1 atm and an initial volume of 2 L, is compressed to a final pressure of 5 atm at constant temperature.  What is the final volume of the gas?


=====Boyle's law (''pV'' is constant)=====  
====Boyle's law (''pV'' is constant)====  
:<math>
:<math>
(1.1)\qquad\qquad  p_\mathrm{i}\,V_\mathrm{i}  = p_\mathrm{f}\,V_\mathrm{f}  
(1.1)\qquad\qquad  p_\mathrm{i}\,V_\mathrm{i}  = p_\mathrm{f}\,V_\mathrm{f}  
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</math>
</math>


=====Ideal gas law=====
====Ideal gas law====
The number ''n'' of moles is constant
The number ''n'' of moles is constant
:<math>
:<math>
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It is given that the initial and final temperature are equal, <math>T_\mathrm{i} = T_\mathrm{f}\, </math>, therefore the products ''RT''  on both sides of the equation cancel, and  Eq. (1.4) reduces to Eq. (1.1).
It is given that the initial and final temperature are equal, <math>T_\mathrm{i} = T_\mathrm{f}\, </math>, therefore the products ''RT''  on both sides of the equation cancel, and  Eq. (1.4) reduces to Eq. (1.1).


===Problem 4===
===Problem 4===
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\frac{\mathrm{atm}\cdot \mathrm{L}}{\frac{\mathrm{atm} \cdot \mathrm{L}}{\mathrm{K}\cdot \mathrm{mol}}\cdot\mathrm{K}} \right]  
\frac{\mathrm{atm}\cdot \mathrm{L}}{\frac{\mathrm{atm} \cdot \mathrm{L}}{\mathrm{K}\cdot \mathrm{mol}}\cdot\mathrm{K}} \right]  
=\frac{500}{0.0821 \cdot 298}\quad\left[ \frac{\mathrm{mol} \cdot \mathrm{atm}\cdot \mathrm{L}}{\mathrm{atm}\cdot \mathrm{L}} \right] = 20.4 \quad [\mathrm{mol}]
=\frac{500}{0.0821 \cdot 298}\quad\left[ \frac{\mathrm{mol} \cdot \mathrm{atm}\cdot \mathrm{L}}{\mathrm{atm}\cdot \mathrm{L}} \right] = 20.4 \quad [\mathrm{mol}]
</math>


</math>
===Problem 5===
===Problem 5===
Given is that dry air consists of 78.1% N<sub>2</sub>, 20.1% O<sub>2</sub>, and 0.8% Ar (volume percentages).  The [[Atomic_mass#Standard_Atomic_Weights_of_the_Elements|atomic weights]]  of N, O, and Ar are 14.0, 16.0 and 39.9, respectively. Compute the mass of 1 m<sup>3</sup> of dry air at 1 atm and 20 °C.
Given is that dry air consists of 78.1% N<sub>2</sub>, 20.1% O<sub>2</sub>, and 0.8% Ar (volume percentages).  The [[Atomic_mass#Standard_Atomic_Weights_of_the_Elements|atomic weights]]  of N, O, and Ar are 14.0, 16.0 and 39.9, respectively. Compute the mass of 1 m<sup>3</sup> of dry air at 1 atm and 20 °C.
=====Answer=====
 
====Answer====
Since for ideal gases the volume ''V'' is proportional to the number of moles ''n'', a volume percentage is equal to a molar percentage. For instance, for a mixture of two gases, it is easily shown that
Since for ideal gases the volume ''V'' is proportional to the number of moles ''n'', a volume percentage is equal to a molar percentage. For instance, for a mixture of two gases, it is easily shown that
:<math>
:<math>
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Hence the mass of 1 cubic meter of dry air is
Hence the mass of 1 cubic meter of dry air is
:M = 28.6192 &times; 41.5714 &nbsp; g = 1189.7 &nbsp; g = 1.1897 &nbsp; kg
:M = 28.6192 &times; 41.5714 = 1189.7 g = 1.1897 kg

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Tutorials relating to the topic of Ideal gas law.
  • All gases mentioned below are assumed to be ideal, i.e. their p, V, T dependence is given by the ideal gas law.
  • The molar gas constant R = 0.082057 atm·L/(K·mol).

Example problems

See also the tutorials on the Video subpage.

Problem 1

Determine the volume of 1 mol of ideal gas at pressure 1 atm and temperature 20 °C.

Problem 2

Compute from Charles' and Gay-Lussac's law (V/T is constant) the volume of an ideal gas at 1 atm and 0 °C (Use the final result of the previous problem). Write VT for the volume at T °C, then


Problem 3

A certain amount of gas that has an initial pressure of 1 atm and an initial volume of 2 L, is compressed to a final pressure of 5 atm at constant temperature. What is the final volume of the gas?

Boyle's law (pV is constant)

or

Inserting the given numbers

Ideal gas law

The number n of moles is constant

It is given that the initial and final temperature are equal, , therefore the products RT on both sides of the equation cancel, and Eq. (1.4) reduces to Eq. (1.1).

Problem 4

How many moles of nitrogen are present in a 50 L tank at 25 °C when the pressure is 10 atm? Numbers include only 3 significant figures.

Problem 5

Given is that dry air consists of 78.1% N2, 20.1% O2, and 0.8% Ar (volume percentages). The atomic weights of N, O, and Ar are 14.0, 16.0 and 39.9, respectively. Compute the mass of 1 m3 of dry air at 1 atm and 20 °C.

Answer

Since for ideal gases the volume V is proportional to the number of moles n, a volume percentage is equal to a molar percentage. For instance, for a mixture of two gases, it is easily shown that

which states that the molar percentage of gas 1 is equal to the volume percentage of gas 1.

The mass of 1 mole of dry air is

M = 0.781×28.0 + 0.201×32.0 + 0.008×39.9 g = 28.6192 g

In problem 1 it is found that the volume of 1 mole of ideal gas at 1 atm and 20 °C is 24.0550 L = 24.0550×10−3 m3, or

1 m3 contains 1/(24.0550×10−3) = 41.5714 mol

Hence the mass of 1 cubic meter of dry air is

M = 28.6192 × 41.5714 = 1189.7 g = 1.1897 kg