Câu 3 : 

\(m_{ct}=\dfrac{10.80}{100}=8\left(g\right)\)

\(n_{NaOH}=\dfrac{8}{40}=0,2\left(mol\right)\)

a) Hiện tượng : Xuất hiện kết tủa trắng

Pt : \(2NaOH+MgSO_4\rightarrow Na_2SO_4+Mg\left(OH\right)_2|\)

           2                1                  1               1

        0,2                0,1               0,1            0,1

\(n_{Mg\left(OH\right)2}=\dfrac{0,2.1}{2}=0,1\left(mol\right)\)

⇒ \(m_{Mg\left(OH\right)2}=0,1.58=5,8\left(g\right)\)

b) \(n_{MgSO4}=\dfrac{0,2.1}{2}=0,1\left(mol\right)\)

 \(m_{MgSO4}=0,1.120=12\left(g\right)\)

\(m_{ddMgSO}=\dfrac{12.100}{10}=120\left(g\right)\)

c) \(n_{Na2SO4}=\dfrac{0,1.1}{1}=0,1\left(mol\right)\)

⇒ \(m_{Na2SO4}=0,1.142=14,2\left(g\right)\)

\(m_{ddspu}=80+120-5,8=194,2\left(g\right)\)

\(C_{Na2SO4}=\dfrac{14,2.100}{194,2}=7,31\)⁰/₀

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Câu 4 : 

\(n_{Fe}=\dfrac{11,2}{56}=0,2\left(mol\right)\)

Pt : \(Fe+H_2SO_4\rightarrow FeSO_4+H_2|\)

         1         1               1           1

        0,2      0,2

\(n_{H2SO4}=\dfrac{0,2.1}{1}=0,2\left(mol\right)\)

\(m_{H2SO4}=0,2.98=19,6\left(g\right)\)

\(m_{ddH2SO4}=\dfrac{19,6.100}{20}=98\left(g\right)\)

\(V_{ddH2SO4}=\dfrac{98}{1,2}\simeq81,67\left(ml\right)\)

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\(n_{CuCl_2}=\dfrac{60,75}{135}=0,45mol\\ a)CuCl_2+2NaOH\rightarrow Cu\left(OH\right)_2+2NaCl\)
0,45           0,9              0,45                     0,9
\(b)m_X=m_{Cu\left(OH\right)_2}=0,45.81=36,45g\\ c)m_{ddNaOH}=\dfrac{0,9.40}{15\%}\cdot100\%=240g\\ d)m_{ddNaCl}=60,75+240-36,45=264,3g\\ C_{\%NaCl}=\dfrac{0,9.58,5}{264,3}\cdot100\%=19,92\%\\ e)n_{H_2SO_4}=\dfrac{245.20\%}{100\%.98}=0,5mol\\ H_2SO_4+Cu\left(OH\right)_2\rightarrow CuSO_4+2H_2O\\ \Rightarrow\dfrac{0,5}{1}>\dfrac{0,45}{1}\Rightarrow H_2SO_4.dư\)
\(\Rightarrow\)Dung dịch acid \(H_2SO_4\) làm tan hết chất X\(\left(Cu\left(OH\right)_2\right)\)

a)PTHH: ZnCl2+2KOH---->Zn(OH)2+2KCl

b)

m

n

n

=> 0,15/1 <  0,4/1=> KOH dư

Theo pthh, ta có :

n

m

c) m dd sau pư=204+112=316(g)

Theo pthh

n

C% KOH=

n

C% KCl=

\(m_{FeCl_3}=\dfrac{100\cdot13\%}{100\%}=13\left(g\right)\\ \Rightarrow n_{FeCl_3}=\dfrac{13}{162,5}=0,08\left(mol\right)\\ a,\text{Hiện tượng: Màu vàng nâu của dung dịch }FeCl_3\text{ nhạt dần và xuất hiện kết tủa màu nâu đỏ }Fe\left(OH\right)_3\\ PTHH:3NaOH+FeCl_3\rightarrow Fe\left(OH\right)_3\downarrow+3NaCl\\ \Rightarrow n_{NaOH}=3n_{FeCl_3}=0,24\left(mol\right)\\ \Rightarrow m_{CT_{NaOH}}=0,24\cdot40=9,6\left(g\right)\\ \Rightarrow m_{dd_{NaOH}}=\dfrac{9,6\cdot100\%}{10\%}=96\left(g\right)\)\(b,n_{Fe\left(OH\right)_3}=0,08\left(mol\right);n_{NaCl}=0,24\left(mol\right)\\ \Rightarrow\left\{{}\begin{matrix}m_{Fe\left(OH\right)_3}=0,08\cdot107=8,56\left(g\right)\\m_{NaCl}=0,24\cdot58,5=14,04\left(g\right)\end{matrix}\right.\\ \Rightarrow m_{dd_{NaCl}}=96+100-8,56=187,44\left(g\right)\\ \Rightarrow C\%_{NaCl}=\dfrac{14,04}{187,44}\cdot100\%\approx7,49\%\)

\(n_{Fe_2O_3}=\dfrac{20}{160}=0,125\left(mol\right)\)

PTHH:

\(Fe_2O_3+3H_2SO_4\rightarrow Fe_2\left(SO_4\right)_3+3H_2O\)

0,125     0,375             0,125           0,375 

\(m_{ddH_2SO_4}=\dfrac{0,375.98.100}{25}=147\left(g\right)\)

\(C\%_{Fe_2\left(SO_4\right)_3}=\dfrac{0,125.406}{20+147}\approx30,39\%\)

\(n_{FeCl_3}=\dfrac{48,75}{162,5}=0,3(mol)\\ 3NaOH+FeCl_3\to Fe(OH)_3\downarrow+3NaCl\\ \Rightarrow n_{Fe(OH)_3}=0,3(mol);n_{NaOH}=n_{NaCl}=0,9(mol)\\ a,m_{Fe(OH)_3}=0,3.107=32,1(g)\\ b,m_{dd_{NaOH}}=\dfrac{0,9.40}{10\%}=360(g)\\ c,C\%_{NaCl}=\dfrac{0,9.58,5}{360+48,75-32,1}.100\%=13,98\%\\ \)

\(d,2Fe(OH)_3+3H_2SO_4\to Fe_2(SO_4)_3+6H_2O\\ \Rightarrow n_{H_2SO_4}=0,45(mol)\\ \Rightarrow m_{dd_{H_2SO_4}}=\dfrac{0,45.98}{20\%}=220,5(g)\\ \Rightarrow V_{dd_{H_2SO_4}}=\dfrac{220,5}{1,14}=193,42(ml)\)