A 3.7145-g portion of disodium EDTA dihydrate (M.W. 372.24) was dissolved in enough distilled water to...
A 3.7145-g portion of disodium EDTA dihydrate (M.W. 372.24) was dissolved in enough distilled water to prepare 1.000 liter of solution. A 100.0-mL water sample was adjusted to pH 10 and titrated to endpoint with 11.23 mL of the EDTA solution. Calculate the concentration of the EDTA solution and th e hardness of the water sample. Express the hardness of mg caCO3 /L.
Homework Answers
Molarity of EDTA solution
Molarity = weight of EDTA*1/molar mass of EDTA *volume of water (lit)
Molarity = 3.7145/372.25
= 0.00997M
We know that
M1V1 = M2V2
M1 = Molarity of water sample = ?M
V1= volume of water sample = 100 ml
M2 = Molarity of EDTA solution = 0.0099M
V2 = volume of EDTA solution for titration = 11.23 ml
M1 = M2V2/V1
= 0.00997*11.23/100 M
= 0.001119 M
Molarity of water sample (M1) = 0.001119 M
Hardness of water sample = M1*100*1000 ppm
= 0.001119*100*1000 ppm
= 111.9 ppm
Hardness of the given water sample = 111.9 ppm (or) 111.9 mg/lit.
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