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anila , 7 Years ago
Grade 12th pass
General Physics> …...........................................
1 Answers
Saurabh Koranglekar
Last Activity: 4 Years ago
9650 Ampere of current will be equal to0.01F(1F= 96500amp, so 956amp will be 0.01F)
Therefore,
Mass of Ag deposited will be= 108* 0.01
=1.08grams
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