For the reaction
`CaCO_(3)(s) hArr CaO(s) + CO_(2)(g)`
`K_(p)=1.16` atm at `800^(@)C`. If 20.0g of `CaCO_(3)` was put into a 10.0 L flask and heated to `800^(@)C,` what percentage of `CaCO_(3)` would remain unreacted at equilibrium ?

For the reaction CaCO_(3)(s) hArr CaO(s) was put in to 10 L container and heated to 800^(@)C , what percentage of the CaCO_(3) would remain unreacted at equilibrium.

For the reaction : CaCO_(3)(s) hArr CaO(s)+CO_(2)(g),K_(p)=1.16atm at 800^(@)C . If 20g of CaCO_(3) were kept in a 10 litre vessel at 800^(@)C , the amount of CaCO_(3) remained at equilibrium is :

For the reaction CaCO_(3) (s) hArr CaO (s) + CO_(2) (g), K_(p) = 1*16 " atm . If "20* 0" g of " CaCO_(3) " is heated to " 800^(@)C" in a 10 litre container, what % of "CaCO_(3) " would remain unreached at equilibrium ? ( Mol. wt. of " CaCO_(3) = 100, R = 0*0821 " L atm mol"^(-1) K^(-1) )

For the reaction CaCO_(3(s)) hArr CaO_((s))+CO_(2(g))k_p is equal to

When 20g of CaCO_3 is put into a 11.45L flask and heated to 800^@C , 35% of CaCO_3 remains undissociated at equilibrium. Calculate the value of K_p .

Equilibrium constant K_(p) for the reaction CaCO_(3)(s) hArr CaO(s) + CO_2(g) is 0.82 atm at 727^@C . If 1 mole of CaCO_(3) is placed in a closed container of 20 L and heated to this temperature, what amount of CaCO_(3) would dissociate at equilibrium?

For CaCO_(3)(s) hArr CaO(s)+CO_(2)(g), K_(c) is equal to …………..

When 20 g of CaCO_3 were put into 10 litre flask and heated to 800^@C, 30% of CaCO_3 remained unreacted at equilibrium K_p for decomposition of CaCO_3 will be

For the reaction : CaCO_3(s) hArr CaO(s)+CO_2(g), K_p=1.6 atm at 800^@C .if 20 g of CaCO_3 were kept in a 10 litre vessel at 800^@C , the amount of CaCO_3 that remained at equilibrium is :