Answer to Question #250987 in Physical Chemistry for SHANIB HUSSAIN

Here diacidic base is present which give two end point one with phenalphthein and second with methy orange

For phenolphthalein end point-

"\\frac{1}{2}\\ Meq\\ of\\ Diacidic\\ base = Meq.\\ of\\ of \\ 9.6ml \\ \\frac{N}{50}\\ HCl"

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="\\frac{1\\times 9.6}{50\\times1000}"

="Meq.\\ of\\ Diacidic\\ base=2\\times Meq.\\ of\\ H2SO4"

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For methyl orange end point-

"Meq.\\ of\\ monoacidic\\ base\\ formed=Meq.\\ of\\ 1ml of\\ extra\\ HCl\\ used"

"=\\frac{1\\times1}{50\\times 1000}"

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= "\\frac{1}{50000 }Meq."

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Normality of diacidic alkalinity present in 20 ml water = "\\frac{2\\times 1000}{6225\\times 20}=\\frac{20}{6225}=\\frac{4}{1245}\\ N"

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