A sample of sulfur hexafluoride gas occupies 8.62 L at 221 degrees Celsius. Assuming that the pressure remains constant, what temperature (in Celsius) is needed to reduce the volume to 2.61 L?

1 Answer
Meave60
Jul 5, 2017

The temperature needed to reduce the volume from "8.62 L" to "2.61 L" is -123^@"C".

Explanation:

Your variables, "L" and ""^@"C" represent volume and temperature. The gas law that involves the relationship between the volume of a gas and its temperature is Charles' law. http://chemistry.bd.psu.edu/jircitano/gases.html

Charles' law states that the volume of a given amount of gas held at constant pressure is directly proportional to its Kelvin temperature. This means that as the temperature increases, the volume also increases, and vice-versa. The equation used to solve gas problems involving Charles' law is:

V_1/T_1=V_2/T_2,

where the temperatures must be in Kelvins. Add 273.15 to the Celsius temperature to get the Kelvin temperature.

Organize your data:

Known

V_1="8.62 L"

T_1="221"^@"C" + 273.15="494 K"

V_2="2.61 L"

Unknown

T_2=?

Solution

Rearrange the equation given above to isolate "T_2. Insert your data into the new equation and solve.

T_2=(V_2T_1)/V_1

T_2=(2.61color(red)cancel(color(black)("L"))xx494"K")/(8.62color(red)cancel(color(black)("L")))="150. K"

To convert from Kelvins to degrees Celsius, subtract 273.15 from the Kelvin temperature.

"150. K"-273.15"="-123^@"C"

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