2g of hydrogen gas diffused through a porous pot in 10minutes under the same conditions how many grams of oxygen will diffuse through the same pot
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Given 2g of hydrogen gas diffused through a porous pot in 10 minutes under the same conditions how many grams of oxygen will diffuse through the same pot
We know that 1 mole is 2 g hydrogen .
According to Graham’s law the rate of diffusion of a gas is inversely proportional to the square root of its molecular weight, the rate of diffusion of oxygen gas is 1/4 to that of hydrogen gas here, So its 1/4 th mole would diffuse. It means
32 x 1/4 g = 8 gram
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here is the answer. thaks
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