Answer:
710,33 g NO2
Explanation:
2 C8H18 + 25 O2 → 16 CO2 + 18 H2O Â
(800 g octane) / (114.2293 g C8H18/mol x (25/2)) = 87.54 mol O2 used to combust the octane
[tex]87.54 mol O2 x \frac{15}{85}[/tex] = 15.44 mol O2 used to form NO2
O2 + 2NO → 2NO2
(15.44 mol O2) x (2/2) x (46.0056 g NO2/mol) = 710,33 g NO2
Answer:
[tex]m_{NO_2}=1424.16gNO_2[/tex]
Explanation:
Hello,
At first, the combustion of octane is illustrated as shown below:
[tex]C_8H_{18}(g)+\frac{25}{2}O_2(g)-->8CO_2(g)+9H_2O(g)[/tex]
Now, since 800 grams of octane are burned, we compute the moles of oxygen that reacted via stoichiometry:
[tex]n_{O_2}=800gC_8H_{18}*\frac{1molC_8H_{18}}{114gC_8H_{18}}*\frac{\frac{25}{2}molO_2}{1molC_8H_{18}} \\n_{O_2}=87.72molO_2[/tex]
As that is the combusting oxygen, we now look for the total oxygen that was employed by:
[tex]n_{O_2}^{tot}=\frac{87.72molO_2}{0.85} =103.2molO_2[/tex]
Therefore the 15% used in the NOâ‚‚ turns out:
[tex]n_{O_2}^{forNO_2}=103.2molO_2*0.15=15.48molO_2[/tex]
Finally, for the NOâ‚‚ production:
[tex]O_2+2NO-->2NO_2[/tex]
The produced grams of NOâ‚‚ are:
[tex]m_{NO_2}=15.48molO_2*\frac{2molNO_2}{1molO_2}*\frac{46gNO_2}{1molNO_2}\\\\ m_{NO_2}=1424.16gNO_2[/tex]
Best regards.
