A gas mixture input is given to a membrane with 40% O2 and 60% N2, the waste contains 80% of the input and the product contains 25% O2 and 75% N2, what is the percentage of O2 in the waste?(a) 0.22(b) 0.44(c) 0.66(d) 0.88

A gas mixture input is given to a membrane with 40% O2 and 60% N2, the

1.	A gas mixture input is given to a membrane with 40% O2 and 60% N2, the waste contains 80% of the input and the product contains 25% O2 and 75% N2, what is the percentage of O2 in the waste?(a) 0.22(b) 0.44(c) 0.66(d) 0.88
Answer» Correct answer is (b) 0.44 For explanation: Let the input is 100 Kg mol, => waste = 0.8(100) = 80 Kg mol, => Product = 20 Kg mol. Equation of material balance, O2: 0.4(100) = 0.25(20) + y(80), => y = 0.4375 ≈ 0.44.

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A gas mixture input is given to a membrane with 40% O2 and 60% N2, the waste contains 80% of the input and the product contains 25% O2 and 75% N2, what is the percentage of O2 in the waste?(a) 0.22(b) 0.44(c) 0.66(d) 0.88

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