40% of a mixture of 2.0 mol of N(2) and ...

`40%` of a mixture of `2.0` mol of `N_(2)` and `0.6` mol of `H_(2)` reacts to give `NH_(3)` according to the equation:
`N_(2)(g)+3H_(2)(g)hArr2NH_(3)(g)`
at constant temperature and pressure. Then the ratio of the final volume to the initial volume of gases are

A

`4:5`

B

`5:4`

C

`7:10`

D

`8:5`

Verified by Experts

The correct Answer is:

A

`N//A`

40% of a mixture of 2.0 mol of N(2) and 0.6 mol of H(2) reacts to give...
Text Solution
|
40% of a mixture of 2.0 mol of N(2) and 0.6 mol of H(2) reacts to give...
Text Solution
|
According to the equation N(2)O(3)(g) + 6H(2)(g) rArr 2NH(3)(g) + 3H...
Text Solution
|
Ammonia is produced in accordance with this equation . N(2)(g) + 3H(2)...
Text Solution
|
N(2)(g) and H(2)(g) are allowed to react in a closed vessel at given t...
Text Solution
|
A mixture of 0.2 mole of N(2) and 0.6 mole of H(2) react to give NH(3)...
Text Solution
|
2 mol of N(2) is mixed with 6 mol of H(2) in a closed vessel of one li...
Text Solution
|
The reaction N(2)(g)+3H(2)(g)hArr2NH(3)(g) is in equlibrium. Now the r...
Text Solution
|
If Ar is added to the equilibrium N(2(g))+3H(2(g))hArr2NH(3) at cons...
Text Solution
|

Similar Questions