Find the strength of 500 mL of a 0-5 N sulphuric acid solution-A- 42-5 g - LB- 12-25 g - LC- 35-68 g - LD- 24-5 g - L

The correct option is D 24.5 g/LNormality = nbsp; nbsp;number of gram equivalentstotal volume of solution (mL)× 1000 ⇒ 0.5 N = nbsp; number of gram equi ...

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Standard XII

Chemistry

Normality

Find the stre...

Question

Find the strength of 500 mL of a 0.5 N sulphuric acid solution.

42.5 g/L

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12.25 g/L

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24.5 g/L

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35.68 g/L

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Solution

The correct option is C 24.5 g/L
$Normality = \frac{number of gram equivalents}{total volume of solution (mL)} \times 1000$
$\Rightarrow 0.5 N = \frac{number of gram equivalents}{500} \times 1000$
Or, number of gram equivalents = 0.25

Mass of sulphuric acid = $0.25 \times 49 = 12.25$ g

Strength of $H_{2} S O_{4}$ solution = $\frac{mass of solute in g}{total volume of solution in L}$

Strength = 24.5 g/L

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In a quadrilateral ABCD,LA=150 and LB=LC=LD,f finLB,LC, AND LD

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