What volume of `O_(2)` at NTP liberated by 5 A current flowing for 193 and through acidulated water ?A. 56 mLB. 112 m LC. 158 mLD. 965 m L

What volume of `O_(2)` at NTP liberated by 5 A current flowing for 193

1.	What volume of `O_(2)` at NTP liberated by 5 A current flowing for 193 and through acidulated water ?A. 56 mLB. 112 m LC. 158 mLD. 965 m L
Answer» Correct Answer - A `W = ( I xx t xx E)/(F) = (5 xx 193 xx 8)/(96500) = 0.08 g ` At NTP , volume of 32 g of `O_(2)` = 22400 mL `therefore 0.08` g = x ` x = (22400 xx 0.08)/(32) = 56 ` mL

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What volume of `O_(2)` at NTP liberated by 5 A current flowing for 193 and through acidulated water ?A. 56 mLB. 112 m LC. 158 mLD. 965 m L

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