Chemistry, asked by karthikvijai05, 1 month ago

28 gram nitrogen and 10 gram hydrogen reacted to form Nh3

find limiting reagent

the excess reagent and by how much

how much ammonia is formed
its urgent

Answers

Answered by bubly1322
1

Explanation:

Limiting reagent → The limiting reagent in a chemical reaction is the substance that is totally consumed when the chemical reaction is complete.

Given:-

Weight of N

2

=50kg=5×10

4

g

Weight of H

2

=10kg=10

4

g

Molecular weight of N

2

=28g

Molecular weight of H

2

=2g

As we know that,

No. of moles =

Mol. wt.

Weight

Therefore,

No. of moles of N

2

=

28

5×10

4

=1.786×10

3

moles

No. of moles of H

2

=

2

10

4

=5×10

3

moles

Now,

N

2

+3H

2

⟶2NH

3

From the above reaction,

1 mole of N

2

reacts with 3 moles of H

2

to produce 2 mole of ammonia.

Therefore,

1.786×10

3

moles of N

2

will react with 5.36×10

3

moles of H

2

to produce ammonia.

But given amount of H

2

is 5 moles.

Thus H

2

is limiting reagent.

Therefore,

Amount of ammonia produced by 3 moles of H

2

=2 moles

∴ Amount of ammonia produced by 5×10

3

moles of H

2

=

3

2

×5×10

3

=3.33×10

3

moles

Hence 3.33 moles of ammonia gas is formed.

Hope you understand the problem

Thank you

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Answered by chandruarumugam977
0

Answer:

12 gram of hydrogen gas and 56 gram of nitrogen gas

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