Answer:
10.54 L
Explanation:
Given that:-
Moles of [tex]O_2[/tex] = 1.00 moles
According to the given reaction:-
[tex]4NH_3+7O_2\rightarrow 4NO_2+6H_2O[/tex]
7 moles of oxygen gas reacts with 4 moles of ammonia
1 mole of oxygen gas reacts with [tex]\frac{4}{7}[/tex] moles of ammonia
Moles of ammonia = 0.5714 moles
Also, Given that:
Temperature = 850 °C
The conversion of T( °C) to T(K) is shown below:
T(K) = T( °C) + 273.15
So,
T₁ = (850 + 273.15) K = 1123.15 K
n = 0.5714 moles
P = 5.00 atm
Using ideal gas equation as:
[tex]PV=nRT[/tex]
where,
P is the pressure
V is the volume
n is the number of moles
T is the temperature
R is Gas constant having value = 0.0821 L atm/ K mol
Applying the equation as:
5.00 atm × V = 0.5714 moles ×0.0821 L atm/ K mol × 1123.15 K
⇒V = 10.54 L
10.54 L of [tex]NH_3[/tex] required.
