Bài 9:
a) \(n_P=\dfrac{6,2}{31}=0,2\left(mol\right)\)

PTHH: 4P + 5O₂ --t^o--> 2P₂O₅

            0,2->0,25------> 0,1

=> m_P2O5 = 0,1.142 = 14,2 (g)

b) 

P₂O₅ + 3H₂O --> 2H₃PO₄

dd H₃PO₄ là dd axit nên quỳ tím đổi màu đỏ

a) \(n_P=\dfrac{3,1}{31}=0,1\left(mol\right)\)

PTHH: 4P + 5O₂ --t^o--> 2P₂O₅

            0,1--------------->0,05

=> m_P2O5 = 0,05.142 = 7,1 (g)

b) 

PTHH: P₂O₅ + 3H₂O --> 2H₃PO₄

dd B là dd axit nên quỳ tím chuyển màu đỏ

\(n_{Zn}=\dfrac{13}{65}=0,2mol\)

\(Zn+H_2SO_4\rightarrow ZnSO_4+H_2\)

0,2     0,2            0,2           0,2

a)\(V_{H_2}=0,2\cdot22,4=4,48l\)

b)\(m_{ZnSO_4}=0,2\cdot161=32,2g\)

  \(m_{ddZnSO_4}=30+200-0,2\cdot2=229,6g\)

  \(C\%=\dfrac{m_{ct}}{m_{dd}}\cdot100\%=\dfrac{32,2}{229,6}\cdot100\%=14,02\%\)

c)\(n_{CuO}=\dfrac{24}{80}=0,3mol\)

   \(CuO+H_2\rightarrow Cu+H_2O\)

   0,3        0,2     0,2

   \(m_{rắn}=m_{Cu}=0,2\cdot64=12,8g\)

0,2     0,2            0,2           0,2

a)

b)

c)

   0,3        0,2     0,2

\(n_{Na}=\dfrac{46}{23}=2\left(mol\right)\\ n_{H_2O}=\dfrac{15}{18}=\dfrac{5}{6}\left(mol\right)\)

PTHH: 2Na + 2H₂O ---> 2NaOH + H₂

LTL: \(2>\dfrac{5}{6}\) => Na dư

Theo pthh: \(\left\{{}\begin{matrix}n_{H_2}=\dfrac{1}{2}n_{H_2O}=\dfrac{1}{2}.\dfrac{5}{6}=\dfrac{5}{12}\left(mol\right)\\n_{Na\left(pư\right)}=n_{NaOH}=n_{H_2O}=\dfrac{5}{6}\left(mol\right)\end{matrix}\right.\)

=> \(V_{H_2}=\dfrac{5}{12}.22,4=\dfrac{28}{3}\left(l\right)\)

\(m_{dd}=15+23.\dfrac{5}{6}-\dfrac{5}{12}.2=\dfrac{100}{3}\\ m_{NaOH}=\dfrac{5}{6}.40=\dfrac{100}{3}\left(g\right)\\ \rightarrow C\%_{NaOH}=\dfrac{\dfrac{100}{3}}{\dfrac{100}{3}}.100\%=100\%\)

\(n_{Na}=\dfrac{46}{23}=2\left(mol\right)\\ n_{H_2O}=\dfrac{15}{18}=0,83\left(mol\right)\\ pthh:Na+H_2O\rightarrow NaOH+\dfrac{1}{2}H_2\) 
                    0,83             0,83             0,416 
\(V_{H_2}=0,416.22,4=9,3l\\ m_{\text{dd}}=46+15-\left(0,416.2\right)=60,17\left(g\right)C\%=\dfrac{0,83.40}{60,17}.100\%=55,176 \%\)

thế còn nồng độ phần trăm đâu

a) Y là Cu

$m_{Cu} = 8(gam)$

Gọi $n_{Al} = a(mol) ; n_{Fe} = b(mol)$

Ta có : $27a + 56b + 8 = 13,45(1)$

$2Al + 3H_2SO_4 \to Al_2(SO_4)_3 + 3H_2$
$Fe + H_2SO_4 \to FeSO_4 + H_2$
$n_{H_2} = 1,5a + b = \dfrac{5,6}{22,4} = 0,25(2)$

Từ (1)(2) suy ra  a = 0,15 ; b = 0,025$

$\%m_{Cu} = \dfrac{8}{13,45}.100\% = 59,47\%$
$\%m_{Al} = \dfrac{0,15.27}{13,45}.100\% = 30,11\%$

$\%m_{Fe} = 10,42\%$

b)

$n_{H_2SO_4} = n_{H_2} = 0,25(mol)$
$V_{dd\ H_2SO_4} = \dfrac{0,25}{0,5} = 0,5(lít)$

nNa = 6.9 : 23 = 0.3 mol

           4Na + O2 ->2 Na2O

mol :  0.3 ->           0.15

          Na2O + H2O -> 2NaOH

mol : 0.15 ->                0.3

mdd = 0.15 x 62 + 140.7 = 150g

C% NaOH = 0.3x40: 150 x 100% = 8%

a)

$2K + 2H_2O \to 2KOH + H_2$

b)

n K = 3,9/39 = 0,1(mol)

Theo PTHH :

n H2 = 1/2 n K = 0,05(mol)

=> V H2 = 0,05.22,4 = 1,12(lít)

c)

m dd sau pư = m K + m nước - m H2 = 3,9 + 36,2 - 0,05.2 = 40(gam)

C% KOH = 0,1.56/40 .100% =14%

\(n_K=\dfrac{39}{39}=1\left(mol\right)\\ 2K+2H_2O\rightarrow2KOH+H_2\\ n_{H_2}=\dfrac{1}{2}=0,5\left(mol\right)\\ a,V_{H_2\left(đktc\right)}=0,5.22,4=11,2\left(l\right)\\ b,n_{KOH}=n_K=1\left(mol\right)\\ C_{MddKOH}=\dfrac{1}{0,2}=5\left(M\right)\\ c,2H_2+O_2\rightarrow\left(t^o\right)2H_2O\\ n_{O_2}=\dfrac{0,5}{2}=0,25\left(mol\right)\\ V_{O_2\left(đktc\right)}=0,25.22,4=5,6\left(l\right)\)