The following concentration were obtaine...

The following concentration were obtained for the formation of `NH_3` from `N_2 and H_2` at equilibrium for the reaction `N_2(g) +3H_2(g) hArr 2NH_3(g)`
`[N_2]=1.5 xx 10^(-2) M`
`[H_2]=3.0 xx 10^(-2) M`
`[NH_3]=1.2 xx 10^(-2) M `
Calculate equilibrium constant.

`8.83 xx 10^(-1)M`

`1.65 xx 10^(3)M`

`1.13 xx 10^(3) M`

`2.09 xx 10^(3)M`

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The following concentration were obtained for the formation of `NH_3` from `N_2 and H_2` at equilibrium for the reaction `N_2(g) +3H_2(g) hArr 2NH_3(g)` `[N_2]=1.5 xx 10^(-2) M` `[H_2]=3.0 xx 10^(-2) M` `[NH_3]=1.2 xx 10^(-2) M ` Calculate equilibrium constant.

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NARAYNA-CHEMICAL EQUILIBRIUM-Evaluate Yourself -I

The following concentration were obtained for the formation of `NH_3` from `N_2 and H_2` at equilibrium for the reaction `N_2(g) +3H_2(g) hArr 2NH_3(g)`
`[N_2]=1.5 xx 10^(-2) M`
`[H_2]=3.0 xx 10^(-2) M`
`[NH_3]=1.2 xx 10^(-2) M `
Calculate equilibrium constant.