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For a reaction, aA+bBhArrcC+dD, the reac...

For a reaction, `aA+bBhArrcC+dD`, the reaction quotient `Q=([C]_(0)^(c)[D]_(0)^(d))/([A]_(0)^(a)[B]_(0)^(b))`, where `[A]_(0)`, `[B]_(0)`, `[C]_(0)`, `[D]_(0)` are initial concentrations. Also `K_(c)=([C]^(c)[D]^(d))/([A]^(a)[B]^(b))` where `[A]`, `[B]`, `[C]`, `[D]` are equilibrium concentrations. The reaction proceeds in forward direction if `Q lt K_(c)` and in backward direction if `Q gt K_(c)`. The variation of `K_(c)` with temperature is given by: `2303log(K_(C_(2)))/(K_(C_(1)))=(DeltaH)/(R)[(T_(2)-T_(1))/(T_(1)T_(2))]`.
For gaseous phase reactions `K_(p)=K_(c)(RT)^(Deltan)` where `Deltan=` moles of gaseous products `-` moles of gaseous reactants. Also `-DeltaG^(@)=2.303RT log_(10)K_(c)`.
The heat or reaction for an endothermic reaction, in equilibrium is `1200 cal`, at constant volume is more than at constant pressure at `300 K`. The ratio of `K_(p)//K_(c)` is:

A

`1.648xx10^(-3)`

B

`1.648xx10^(-4)`

C

`2.648xx10^(-3)`

D

`1.648xx10^(-2)`

Text Solution

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The correct Answer is:
A
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