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Question

Reaction Yield of the reaction
(i) 2A+B3C+D 20%
(ii) 2C+E4F 40 %
(iii) 3F+7H8G 50%

Starting with 6 mol of A, 9 mol of B, 4 mol of E and 15 mol of H, the number of moles of G formed will be

A
4.48 mol
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B
3.65 mol
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C
7.69 mol
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D
2.28 mol
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Solution

The correct option is A 4.48 mol
2A+B3C+D2C+E4F7H+3F8G
In reaction (i),
2 moles of A react with 1 mole of B,
6 moles will react with 3 moles of B.
So, the limiting reagent will be A.
Now, 2 moles of A produce 3 moles of C,
6 moles will produce 9 moles of C.
Yield of the reaction as 20%
Actual amount of C formed = 9 × 0.2 = 1.8 mol
In reaction (ii),
2 moles of C react with 1 mole of E,
1.8 moles will react with 0.9 mole of E,
The limiting reagent will be C.
2 moles of C produce 4 moles of F.
1.8 moles will produce 42×1.8=3.6 mol
Yield of the reaction as 40%
Actual amount of F formed = 3.6 × 0.4 = 1.44 mol
In reaction (iii),
3 moles of F react with 7 moles of H,
1.44 moles will react with 3.36 moles of H.
So, F will be the limiting reagent.
3 moles of F produce 8 moles of G.
3.36 moles will produce = 83×3.36=8.96 mol
Yield of the reaction as 50%
Actual amount of G formed = 8.96×0.5 = 4.48 mol of G

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