Answer:
The mixture contains 8.23 g of Ar
Explanation:
Let's solve this with the Ideal Gases Law
Total pressure of a mixture = (Total moles . R . T) / V
We convert T° from °C to K → 85°C + 273 = 358K
3.43 atm = (Moles . 0.082 L.atm/mol.K . 358K) / 6.47L
(3.43 atm . 6.47L) / (0.082 L.atm/mol.K . 358K) = Moles
0.756= Total moles from the mixture
Moles of Ar + Moles of H₂ = 0.756 moles
Moles of Ar + 1.10 g / 2g/mol = 0.756 moles
Moles of Ar = 0.756 moles - 0.55 moles H₂ → 0.206
We convert the moles to g → 0.206 mol . 39.95 g / 1 mol = 8.23 g
Answer:
The mass of argon is 8.42 grams
Explanation:
Step 1: Data given
Volume = 6.47 L
Pressure = 3.43 atm
Temperature = 85 °C = 358 K
Mass of hydrgen = 1.0 grams
Step 2: Calculate the number of moles
p*V = n*R*T
n = (p*V)/(R*T)
⇒with n = the number of moles = TO BE DETERMINED
⇒with p = the pressure = 3.43 atm
⇒with V = the volume = 6.47 L
⇒with R = the gas constant = 0.08206 L*atm/mol*K
⇒with T =the temperature = 85 °C = 358 K
n = (3.43*6.47) / (0.08206 * 358)
n = 0.7554 moles
Step 3: Calculate moles Ar
Thus, 0.7554 = mol of Ar + mol of H2
There is 1.10 grams ofH2 gas
Moles H2 = 1.10 grams / 2.02 g/mol
Moles H2 = 0.5446 moles H2
Moles Ar = 0.7554 - 0.5446 = 0.2108 moles
Step 4: Calculate mass Ar
Mass Ar = moles Ar * molar mass Ar
Mass Ar = 0.2108 moles *39.95 g/mol
MAss Ar = 8.42 grams
The mass of argon is 8.42 grams
