Answer:
Pressure for H₂ = 11.9 atm
Option 5.
Explanation:
We determine the complete reaction:
2Al(s) + 6HCl(aq) → 2AlCl₃(aq) + 3H₂(g)
As we do not know anything about the HCl, we assume that the limiting reactant is the Al and the acid is the excess reagent.
Ratio is 2:3.
2 moles of Al, can produce 3 moles of hydrogen
Therefore 4.5 moles of Al must produce (4.5 . 3) / 2 = 6.75 moles
Now we can apply the Ideal Gases law to find the H₂'s pressure
P . V = n . R . T → P = (n . R .T) / V
We replace data: (6.75 mol . 0.082L.atm/mol.K . 300K) / 14L
Pressure for H₂ = 11.9 atm
Answer:
The pressure of H2 is 11.9 atm (option 5)
Explanation:
Step 1: Data given
Volume of hydrogen gas = 14L
Temperature = 300 K
Moles of Al = 4.5 moles
Step 2: The balanced equation
2Al + 6HCl → 2AlCl3 + 3H2
Step 3: Calculate moles of H2
For 2 moles Al we need 6 moles HCl to produce 2 moles AlCl3 and 3 moles H2
For 4.5 moles Al we need 3*4.5 moles HCl = 13.5 moles HCl
We'll produce 4.5 moles AlCl3 and 3/2 * 4.5 = 6.75 moles H2
Step 4: Calculate pressure of H2
p*V = n*R*T
⇒with p = the pressure of H2 = TO BE DETERMINED
⇒with V = the volume of H2 = 14 L
⇒with n = the moles H2 = 6.75 moles
⇒with R = the gas constant = 0.08206 L*atm/mol*K
⇒with T = the temperature = 300 K
p = (n*R*T) / V
p = (6.75 * 0.08206 * 300 ) / 14
p = 11.9 atm
The pressure of H2 is 11.9 atm (option 5)
