A sample of argon gas is cooled and its volume went from 380 mL to 250 mL. If its final temperature was -55° C, what was its original temperature?

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A sample of argon gas is cooled and its volume went from 380 mL to 250 mL. If its final temperature was -55° C, what was its original temperature?

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Answer 1 · 2014-06-27T22:54:39

1) Convert -55 °C to Kelvin and you get 273 + (-55) = 218 K . At this temperature the volume of the gas is 250 mL.

2) At Temperature $T_{1}$ $T_1$ Kelvin ,this temperature the volume of the gas is 380 mL.

Remember that you have to plug into the equation in a very specific way. The temperatures and volumes come in connected pairs and you must put them in the proper place.

Using Charles law equation;

$V_{1}$ $V_1$ / $T_{1}$ $T_1$ = $V_{2}$ $V_2$ / $T_{2}$ $T_2$

$V_{1}$ $V_1$ = 380 mL , $T_{1}$ $T_1$ = ?

$V_{2}$ $V_2$ = 250 mL , $T_{2}$ $T_2$ = 218 K

plug in the values;

380 mL / $T_{1}$ $T_1$ = 250 mL / 218 K

Cross-multiply and divide:

380 mL x 218 K = 250 mL x $T_{1}$ $T_1$

82840 mL K = 250 mL x $T_{1}$ $T_1$

$T_{1}$ $T_1$ = 82840 mL K / 250 mL

$T_{1}$ $T_1$ = 331.36 K

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A sample of argon gas is cooled and its volume went from 380 mL to 250 mL. If its final temperature was -55° C, what was its original temperature?

1 Answer

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