The equilibrium of formation of phosgene...

The equilibrium of formation of phosgene is represented as :
`CO(g)+Cl_(2)(g)hArrCOCl_(2)(g)`
The reaction is carried out in a `500 mL` flask. At equilibrium, `0.3` mol of phosgene, `0.1 mol` of `CO`, and `0.1` mol of `Cl_(2)` are present.
The equilibrium constant of the reaction is

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The formation of phosgene is represented as , CO+ Cl_2 hArr COCl_2 The reaction is carried out in 500 ml flask. At equilibrium 0.3 mole of phosgene, 0.1 mole of CO and 0.1 mole of Cl_2 are present. What is the equilibrium constant of the reaction ?

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In a 500 ml capacity vessel CO and Cl_(2) are mixed to form COCl_(2) . At equilibrium, it contains 0.2 moles of COCl_(2) and 0.1 mole of each of CO and Cl_(2) . The equilibrium constant K_(c) for the reaction CO+Cl_(2) hArr COCl_(2) is

For the reaction CO_((g))+Cl_(2(g))hArrCOCl_(2(g)) the value of Delta n is equal to :-

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The equilibrium of formation of phosgene is represented as : `CO(g)+Cl_(2)(g)hArrCOCl_(2)(g)` The reaction is carried out in a `500 mL` flask. At equilibrium, `0.3` mol of phosgene, `0.1 mol` of `CO`, and `0.1` mol of `Cl_(2)` are present. The equilibrium constant of the reaction is

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The equilibrium of formation of phosgene is represented as :
`CO(g)+Cl_(2)(g)hArrCOCl_(2)(g)`
The reaction is carried out in a `500 mL` flask. At equilibrium, `0.3` mol of phosgene, `0.1 mol` of `CO`, and `0.1` mol of `Cl_(2)` are present.
The equilibrium constant of the reaction is