a. nP4 =\(\frac{m}{M}=\frac{46,5}{31}=\)1,5 mol
PTPU: P4+3O2→2P2O3
Theo phương trình p/ứ: nO2=3nP4=1,5.3=4,5 mol
VO2=n.22,4=4,5.22,4=100,8 l
b,c,d tương tự
nP=\(\frac{46,5}{31}\)=1,5 mol
4P + 5O2 \(\rightarrow\)2P2O5
\(\rightarrow\) nO2=5/4nP=1,875 mol \(\rightarrow\)V O2=1,875.22,4=42 lít
nAl=\(\frac{67,5}{27}\)=2,5 mol
4Al + 3O2\(\rightarrow\)2Al2O3
\(\rightarrow\) nO2=3/2nAl=1,875 mol\(\rightarrow\) V O2= 1,875.22,4 =42 lít
nFe=\(\frac{28}{56}\)=0,5 mol
4Fe +3O2 \(\rightarrow\)2Fe3O3
\(\rightarrow\) nO2=3/4nFe=0,375 mol \(\rightarrow\) V O2=0,375.22,4=8,4 lít
nS=\(\frac{16}{32}\)=0,5 mol
S + O2\(\rightarrow\)SO2
\(\rightarrow\)nO2=nS=0,5 mol \(\rightarrow\) V O2=0,5.22,4=11,2 lít
