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Question

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Answer: 462

💡 Solution & Explanation

    2 1 H 4 atm 2H C 2e         2 2 2H C 2e H 1 atm           2 2 1 2 H 4 atm 2H C 2H C H      For acetic acid 5 2 a 1 K 10 10 C 10         1 2 3 1 H C C 10 10 10             From NaOH   11 2 H C 10        2 2 2 1 C 4

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