Respuesta :
Answer:
1) 11.64 mol/L is the molarity of concentrated HCl.
2) 135.40 mL of volume of 11.64 M will need to prepare 985 mL of 1.6 M HCl.
3) 1,711.08 grams of sodium bicarbonate would be needed to neutralize the spill HCl solution.
Explanation:
HCl solution with 36.0% HCl by mass, menas that in 100 g of solution 36.0 gram of HCl is present.
Mass of HCl= 36.0 g
Moles of HCl = [tex]\frac{36.0 g}{36.5 g/mol}=0.9863 mol[/tex]
Mass of solution ,m= 100 g
Volume of solution = V = ?
Density of the solution ,d= 1.18 g/mL
[tex]V=\frac{d}{M}=\frac{100 g}{1.18 g/mL}=84.75 mL=0.08475 L[/tex]
[tex]Molarity=\frac{Moles }{\text{Volume of solution (L)}}[/tex]
Molarity of the solution :
[tex]=\frac{0.9863 mol}{0.8475 L}=11.64 mol/L[/tex]
11.64 mol/L is the molarity of concentrated HCl.
2)
[tex]M_1V_1=M_2V_2[/tex] ( Dilution equation)
[tex]M_1= 11.64 M[/tex]
[tex]V_1=?[/tex]
[tex]M_2=1.6 M[/tex]
[tex]V_2=985 mL[/tex]
[tex]V_1=\frac{M_2V_2}{M_1}=\frac{1.6 M\times 985 mL}{11.64 M}[/tex]
[tex]=135.40 mL[/tex]
135.40 mL of volume of 11.64 M will need to prepare 985 mL of 1.6 M HCl.
3.
[tex]NaHCO_3+HCl\rightarrow NaCl+H_2O+CO_2[/tex]
Concentration of HCl solution = 11.64 M
Volume of the HCl solution = 1.75 L
Moles of HCl in 1.75 L solution = n
[tex]11.64 M=\frac{n}{1.75 L}[/tex]
[tex]n=1.75 L\times 11.64 M=20.37 mol[/tex]
According to reaction 1 mole of HCl neutralized by 1 mole of sodium carbonate.
Then 20.37 moles of HCl will neutralized by ;
[tex]\frac{1}{1}\times 20.37 mol=20.37 mol[/tex] of sodium carbonate
Mass of 20.37 moles of sodium carbonate :
= 20.37 mol × 84g/mol = 1,711.08 g
1,711.08 grams of sodium bicarbonate would be needed to neutralize the spill HCl solution.
