`0*15` mole of CO taken in `2*5` l flask is maintained at 750 K along with catalyst so that the following reaction can take place : `CO (g) + 2 H_(2) (g) hArr CH_(3)OH (g)` Hydrogen is introduced until the total pressure of the system is `8*5` atmosphere at equilibrium and `0*08` mole of methanol is formed . Calculate (i) `K_(p) and K_(c)` and (ii) the final pressure if the same amount of CO and `H_(2)` as before are used but with no catalyst so that the reaction does not take place.

`0*15` mole of CO taken in `2*5` l flask is maintained at 750 K along

1.	`015` mole of CO taken in `25` l flask is maintained at 750 K along with catalyst so that the following reaction can take place : `CO (g) + 2 H_(2) (g) hArr CH_(3)OH (g)` Hydrogen is introduced until the total pressure of the system is `85` atmosphere at equilibrium and `008` mole of methanol is formed . Calculate (i) `K_(p) and K_(c)` and (ii) the final pressure if the same amount of CO and `H_(2)` as before are used but with no catalyst so that the reaction does not take place.
Answer» ` {:((i),CO,+,2H_(2),hArr,CH_(3)OH) ,("Intialy :",015 "mole",,,,) ,("At eqm:",015 - 008 "mole",,,,), (,=0017 "mole",,,,):}` Total volume, `V= 25 L` Total pressure ` P+ 85 "atm", T= 750 "K" ` ` " Applying " PV= nRT,` we get ` 85 xx 25 = n xx 0* 0821 * 750 or n = 0* 345 "mole" ` ` :. "No. of moles of " H_(2) " at equilibrium " = 0* 345 - ( 0* 017 + 008 ) = 0 248 " mol "` ` P_(CO) = (0* 017 )/(0345 ) xx 85 "atm" = 0* 42 "atm" ` ` p_(H_(2)) = ( 0248 )/(0 345) xx 85 "atm " = 6 11 "atm "` ` P _(CH_(3)OH) = (08)/(0345) xx 85 "atm" = 1 97 "atm" ` ` K_(p) = (P_(CH_(3)OH))/(P_(CO) xx P_(H_(2)))= (197 )/(042 xx (6* 11)^(2) )= 0* 1256 ` ` K_(c) = ([CH_(3) OH])/([CO][H_(2)]^(2))= (0* 08 //25)/((0 017 //25 )(0248 //25)^(2)) = 478 2 ` n(ii) No. of moles of `H_(2) " taken intially " = 0* 248 + 2 xx 0* 08 = 0* 308 ` No. of moles of CO taken intially `= 015` Applying PV = nRt , ` P xx 25 = 0* 458 xx 0* 0821 xx 750 or P = 11* 28 "atm " ` .

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