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Calculate the equilibrium constant for the reaction,
`H_(2(g))+CO_(2(g))hArrH_(2)O_((g))+CO_((g))` at `1395 K`, if the
equilibrium constants at `1395 K` for the following are:
`2H_(2)O_((g))hArr2H_(2)+O_(2(g))` (`K_(1)=2.1xx10^(-13)`)
`2CO_(2(g))hArr2CO_((g))+O_(2(g))` (`K_(2)=1.4xx10^(-12)`)

Text Solution

Verified by Experts

The correct Answer is:
`2.58`
`H_(2)(g)+CO_(2)(g)hArrH_(2)O(g)+CO(g)`.
`2H_(2)O(g)hArr2H_(2)(g)+O_(2)(g) K_(1)=2.1xx10^(-13)` ....(1)
`2CO_(2)(g) hArr2CO(g)+O_(2)(g) K_(2)=1.4xx10^(-12)` ....(2)
`(1)/(2)"eq".(2)-(1)/(2)"eq".(1)`
`CO_(2)(g)-H_(2)O(g)hArrCO(g)+(1)/(2)O_(2)(g)`.
`CO_(2)(g)+H_(2)(g)hArrH_(2)O(g)+CO(g)`.
`(1)/(2)[eq. (2)-eq. (1)] rArr K=((K_(2))/K_(1))^(1//2)=((1.4xx10^(-12))/(2.1xx10^(-13)))^(1//2)=((14)/2.1)^(1//2)=2.58`.
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