A lead storage battery containing 5.0L of $H_{2} S O_{4}$ solution is operated for $9.65 \times 10^{5} s$ with a steady current of 100 mA. Assuming volume of the solution remains constant, normality of $H_{2} S O_{4}$ will :

increase by unity

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increase by 0.20

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decrease by 0.40

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remain unchanged

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Solution

The correct option is C
decrease by 0.40

Anode :
$P b_{(s)} + H_{2} S O_{4 (a q)} \to P b S O_{4 (S)} + 2 H_{(a q)}^{+} + 2 e^{-}$
Cathode :
$P b O_{2 (s)} + H_{2} S O_{4 (a q)} + 2 H^{+} + 2 e^{-} \to P b S O_{4 (s) + 2 H_{2} O} 2 m o l o f H_{2} S O_{4} c o n s u m e d \equiv . o f H_{2} S O_{4} = 2 \times 96500 C .$
Hence, equiv. of $H_{2} S O_{4}$ consumed
$= \frac{4 \times 100 \times 10^{- 3} \times 9.65 \times 10^{5}}{2 \times 96500} = 2;$
decrease in normality $= \frac{2}{5}$

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A lead storage battery containing 5.0L of $H_{2} S O_{4}$ solution is operated for $9.65 \times 10^{5} s$ with a steady current of 100 mA. Assuming volume of the solution remains constant, normality of $H_{2} S O_{4}$ will :

A lead storage battery containing 5.0 L of (1N) $H_{2} S O_{4}$ solution is operated for $9.65 \times 10^{5}$ s with a steady current of 100 mA. Assuming volume of the solution remaining constant, normality of $H_{2} S O_{4}$ will: