A sample of 02 gas occupies 346 mL at 45°C and 1.50 atm. What is the volume of this O2 gas sample at STP? Enter your answer in the provided box. L L

Question

asked Mar 27, 2020 201k views

2 Answers

MCBama · Answer 1 · 2020-03-29T17:51:03+0000

Step-by-step explanation:

The given data is as follows.

V_(1) = 346 mL,
T_(1) =
45.0^(o)C = (45 + 273) K = 318 K,

P_(1) = 1.50 atm,
V_(2) = ?,
T_(2) = 273 K,

P_(2) = 1 atm

And, according to ideal gas equation,

(P_(1)V_(1))/(T_(1)) = (P_(2)V_(2))/(T_(2))

Now, putting the given values into the above formula and we will calculate the final volume as follows.

(P_(1)V_(1))/(T_(1)) = (P_(2)V_(2))/(T_(2))

(1.50 atm * 346 mL)/(318 K) = (1 atm * V_(2))/(273 K)

V_(2) = 445.56 mL

Thus, we can conclude that the volume of this
gas sample at STP is 445.56 mL.

Swaroop Maddu · Answer 2 · 2020-04-01T08:07:10+0000

Answer: The volume of oxygen gas at STP is 446 mL

Step-by-step explanation:

STP conditions are:

Pressure of the gas = 1 atm

Temperature of the gas = 273 K

To calculate the volume when temperature and pressure has changed, we use the equation given by combined gas law. The equation follows:

(P_1V_1)/(T_1)=(P_2V_2)/(T_2)

where,

$P_1,V_1\text{ and }T_1$ are the initial pressure, volume and temperature of the gas

$P_2,V_2\text{ and }T_2$ are the final pressure, volume and temperature of the gas

We are given:

$P_1=1.50atm\\V_1=346mL\\T_1=45^oC=(45+273)K=318K\\P_2=1atm\\V_2=?\\T_2=273K$

Putting values in above equation, we get:

$(1.50atm* 346mL)/(318K)=(1atm* V_2)/(273K)\\\\V_2=446mL$

Hence, the volume of oxygen gas at STP is 446 mL