Question

At a constant temperature and pressure, the reaction of 150 mL of N 2 gas with 150 mL of H 2 gas via the balanced equation: N 2 (g) + 3 H 2 (g) -------> 2 NH 3 (g) will produce ____ mL of NH 3 gas...

At a constant temperature and pressure, the reaction of 150 mL of N 2 gas with 150 mL of
H 2 gas via the balanced equation:
N 2 (g) + 3 H 2 (g) -------> 2 NH 3 (g)
will produce ____ mL of NH 3 gas (assuming ideal gas behavior) after removal of all other
gases.

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Answer #1

As the volume of gas occupied is equivalent to the number of moles at constant T and P for ideal gas.

So, according the given reaction 150 ml of hydrogen will produce 2/3 *150=100 ml of ammonia after removal of all other gases.

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At a constant temperature and pressure, the reaction of 150 mL of N 2 gas with 150 mL of H 2 gas via the balanced equation: N 2 (g) + 3 H 2 (g) -------> 2 NH 3 (g) will produce ____ mL of NH 3 gas...
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