Answer : The wrong equation is,
Explanation :
The given equilibrium reaction is,
![4Fe(s)+3O_2(g)\rightarrow 2Fe_2O_3(s)](https://img.qammunity.org/2019/formulas/chemistry/high-school/1xhf01vwtjhaljs39dmdarpp9mrbnpyyd5.png)
The expression for equilibrium constant in terms of concentration,
![K_c=(1)/([O_2]^3)\\\\K_c=[O_2]^(-3)](https://img.qammunity.org/2019/formulas/chemistry/college/ad3vd4u34eil9wn9wco59l38tbc82lot47.png)
The expression for equilibrium constant in terms of pressure,
![K_p=(1)/((P_(O_2))^3)\\\\K_p=(P_(O_2))^(-3)](https://img.qammunity.org/2019/formulas/chemistry/college/wxu9aje1tbffhqclhyu58dsd14tta1po41.png)
The relation between the equilibrium constant in terms of concentration and equilibrium constant in terms of pressure will be,
where,
= number of moles of gaseous products - number of moles of gaseous reactants
R = gas constant
T= temperature
For reaction the given reaction,
= number of moles of gaseous products - number of moles of gaseous reactants= 0 - 3 = -3
Therefore, the correct equations for equilibrium are,
,
and