PTHH: Ba(OH)₂ + 2HCl ===> BaCl₂ + 2H₂O

Ta có: n_Ba(OH)2 = 0,05 x 0,04 = 0,002 (mol)

n_HCl = 0,06 x 0,15 = 0,009 (mol)

Lập tỉ lệ số mol: \(\frac{0,002}{1}< \frac{0,009}{2}\)

=> HCl dư, Ba(OH)₂ hết

=> Tính theo số mol Ba(OH)₂

Theo PTHH: n_BaCl2 = n_Ba(OH)2 = 0,0002 (mol)

=> C_M(BaCl₂) = \(\frac{0,002}{0,2}=0,01M\)

\(n_{Ba\left(OH\right)_2}=0,05.0,04=0,002mol\\ n_{HCl}=0,15.0,06=0,009mol\\ Ba\left(OH\right)_2+2HCl\rightarrow BaCl_2+2H_2O\\ \Rightarrow\dfrac{0,002}{1}< \dfrac{0,009}{2}\Rightarrow HCl.dư\\ Ba\left(OH\right)_2+2HCl\rightarrow BaCl_2+2H_2O\)

0,002             0,004         0,002     

\(C_{M_{BaCl_2}}=\dfrac{0,002}{0,05+0,15}=0,01M\\ C_{M_{HCl.dư}}=\dfrac{0,009-0,004}{0,05+0,15}=0,025M\)

Ba(OH)₂ + 2HCl → BaCl₂ + 2H₂O

\(n_{Ba\left(OH\right)_2}=0,05\times0,5=0,025\left(mol\right)\)

\(n_{HCl}=0,15\times0,1=0,015\left(mol\right)\)

Theo PT: \(n_{Ba\left(OH\right)_2}=\dfrac{1}{2}n_{HCl}\)

Theo bài: \(n_{Ba\left(OH\right)_2}=\dfrac{5}{3}n_{HCl}\)

Vì \(\dfrac{5}{3}>\dfrac{1}{2}\) ⇒ \(Ba\left(OH\right)_2\) dư

Dung dịch A gồm: Ba(OH)₂ dư và BaCl₂

Theo PT: \(n_{Ba\left(OH\right)_2}pư=\dfrac{1}{2}n_{HCl}=\dfrac{1}{2}\times0,015=0,0075\left(mol\right)\)

\(\Rightarrow n_{Ba\left(OH\right)_2}dư=0,025-0,0075=0,0175\left(mol\right)\)

\(\Rightarrow C_{M_{Ba\left(OH\right)_2}}dư=\dfrac{0,0175}{0,2}=0,0875\left(M\right)\)

Theo PT: \(n_{BaCl_2}=\dfrac{1}{2}n_{HCl}=\dfrac{1}{2}\times0,015=0,0075\left(mol\right)\)

\(\Rightarrow C_{M_{BaCl_2}}=\dfrac{0,0075}{0,2}=0,0375\left(M\right)\)

theo đề bài:

nHCl=0,3.0,5=0,15mol

nBa(OH)2=0,2.A(mol)

C_MHCl=\(\dfrac{n_{HCl_{dư}}}{0,5}=0,02M\)

=>\(n_{HCl_{du}}\)=0,02.0,5=0,01mol

\(n_{HCl_{pu}}=0,15-0,01=0,14mol\)

PTPU

2HCl+Ba(OH)2->BaCl2+2H2O

0,14..........0,7

\(n_{Ba\left(OH\right)_2}=0,7mol\)

\(=>C_{M_{Ba\left(OH\right)_2}}=\dfrac{0,7}{0,2}=3,5M\)

nHCl=0,5.0,3=0,15(mol)

nBa(OH)2=0,2A

nHCl dư=0,5.0,02=0,01(mol)

=>nHCl p/ứ=0,15-0,01=0,14(mol)

pt: 2HCl+Ba(OH)2--->BaCl2+2H2O

Theo pt: nBa(OH)2=1/2nHCl=0,07(mol)

=>0,2A=0,07=>A=0,35(M)

\(n_{NaOH}=0,2.1=0,2\left(mol\right)\\ n_{H_2SO_4}=0,3.1,5=0,45\left(mol\right)\)

\(2NaOH+H_2SO_4\rightarrow Na_2SO_4+2H_2O\)

0,2------->0,1--------->0,1

Xét \(\dfrac{0,2}{2}< \dfrac{0,45}{1}\Rightarrow\) \(H_2SO_4\)dư

Trong dung dịch D có:

\(\left\{{}\begin{matrix}n_{H_2SO_4}=0,45-0,1=0,35\left(mol\right)\\n_{Na_2SO_4}=0,1\left(mol\right)\end{matrix}\right.\)

\(\Rightarrow\left\{{}\begin{matrix}CM_{H_2SO_4}=\dfrac{0,35}{0,5}=0,7M\\CM_{Na_2SO_4}=\dfrac{0,1}{0,5}=0,2M\end{matrix}\right.\)

b

\(Ca\left(OH\right)_2+H_2SO_4\rightarrow CaSO_4+2H_2O\)

0,35<---------0,35

\(V_{Ca\left(OH\right)_2}=\dfrac{0,35.74}{1,2}=\dfrac{259}{12}\approx21,58\left(ml\right)\\ \Rightarrow V_{dd.Ca\left(OH\right)_2}=\dfrac{\dfrac{259}{12}.100\%}{10\%}=\dfrac{1295}{6}\approx215,83\left(ml\right)\)

a, \(n_{Fe}=\dfrac{8,4}{56}=0,15\left(mol\right)\)

\(n_{HCl}=0,2.2=0,4\left(mol\right)\)

PT: \(Fe+2HCl\rightarrow FeCl_2+H_2\)

Xét tỉ lệ: \(\dfrac{0,15}{1}< \dfrac{0,4}{2}\), ta được HCl dư.

Theo PT: \(n_{H_2}=n_{Fe}=0,15\left(mol\right)\Rightarrow V_{H_2}=0,15.22,4=3,36\left(l\right)=3360\left(ml\right)\)

b, Theo PT: \(\left\{{}\begin{matrix}n_{FeCl_2}=n_{Fe}=0,15\left(mol\right)\\n_{HCl\left(pư\right)}=2n_{Fe}=0,3\left(mol\right)\end{matrix}\right.\)

\(\Rightarrow n_{HCl\left(dư\right)}=0,4-0,3=0,1\left(mol\right)\)

\(\Rightarrow\left\{{}\begin{matrix}C_{M_{FeCl_2}}=\dfrac{0,15}{0,2}=0,75\left(M\right)\\C_{M_{HCl\left(dư\right)}}=\dfrac{0,1}{0,2}=0,5\left(M\right)\end{matrix}\right.\)

c, Ta có: \(m_{ddHCl}=1,25.200=250\left(g\right)\)

⇒ m _{dd sau pư} = 8,4 + 250 - 0,15.2 = 258,1 (g)

\(\Rightarrow\left\{{}\begin{matrix}C\%_{FeCl_2}=\dfrac{0,15.127}{258,1}.100\%\approx7,38\%\\C\%_{HCl\left(dư\right)}=\dfrac{0,1.36,5}{258.1}.100\%\approx1,41\%\end{matrix}\right.\)

k ai giải đc à

HCl 1 : Vdd(1) = mdd/D => mdd= Vdd. D 

=> mHCl = (mdd . C%)/100 => số mol HCl 

HCl 2 : số mol HCl 2 = CM. Vdd(2)

=> số mol tổng , V_tổng =Vdd1 + Vdd2 

=> CM 

bài này bạn xem lại dữ liệu khối lượng riêng nhé

\(a,n_{Na_2SO_4}=0,2\cdot0,2=0,04\left(mol\right);n_{Ba\left(OH\right)_2}=0,2\cdot0,1=0,02\left(mol\right)\\ PTHH:Na_2SO_4+Ba\left(OH\right)_2\rightarrow2NaOH+BaSO_4\downarrow\\ TL:....1.....1......2......1\left(mol\right)\\ BR:.......0,02.....0,02......0,04......0,02\left(mol\right)\)

Vì \(\dfrac{n_{Na_2SO_4}}{1}>\dfrac{n_{Ba\left(OH\right)_2}}{1}\) nên \(Na_2SO_4\) dư, \(Ba\left(OH\right)_2\) hết

\(b,C_{M_{NaOH}}=\dfrac{0,04}{0,2+0,2}=0,1M\)

Ba(OH)₂ + 2HCl ( ightarrow)BaCl₂ + 2H₂O

n_Ba(OH)2=0,05.0,05=0,0025(mol)

n_HCl=0,15.0,1=0,015(mol)

Vậy HCl dư

Theo PTHH ta có:

n_Ba(OH)2=n_BaCl2=0,0025(mol)

C_M=(dfrac{0,0025}{0,2}=0,0125M)

Em tính thiếu C_M của HCl dư rồi