Question #36619

1 Answer
Stefan V.
Dec 31, 2017

Because its absolute temperature didn't double.

Explanation:

As you know, when the pressure and the number of moles of gas present in a container are kept constant, the volume of the gas and its temperature have a direct relationship as described by Charles' Law.

V_1/T_1 = V_2/T_2V1T1=V2T2

Here

  • V_1V1, T_1T1 represent the volume and the absolute temperature of the gas at an initial state
  • V_2V2, T_2T2 represent the volume and the absolute temperature of the gas at a final state

The key thing to keep in mind here is that the temperature of the gas must be expressed in Kelvin in order for this equation to work.

To do that, you use the conversion factor

color(blue)(ul(color(black)(T["K"] = t[""^@"C"] + 273.15)))

In your case, the temperature of the gas doubles in degrees Celsius, but that does not mean that it will double in Kelvin!

T_1 = 25^@"C" + 273.15 = "298 K"

T_2 = 50^@"C" + 273.15 = "323 K"

This means that the volume of the gas, which is equal to

V_2 = T_2/T_1 * V_1

will be equal to

V_2 = (323 color(red)(cancel(color(black)("K"))))/(298color(red)(cancel(color(black)("K")))) * V_1

V_2 ~~ 1.084 * V_1

So the volume of the gas will only increase 1.084 times when the temperature of the gas goes from 25^@"C" to 50^@"C".

In order for the volume to double, i.e. to have V_2 = 2V_1, the temperature of the gas must increase to

T_2 = (2 * color(red)(cancel(color(black)(V_1))))/color(red)(cancel(color(black)(V_1))) * T_1

T_2 = 2 * T_1

T_2 = "596 K"

In degrees Celsius, the temperature of the gas must increase to

t_2 = "596 K"- 273.15 = 323^@"C"

in order for the volume of the gas to double.

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