Home
Class 11
CHEMISTRY
One of the reaction that takes place in ...

One of the reaction that takes place in producing steel from iron ore is the reduction of iron(II) oxide by carbon monoxide to give iron metal and `CO_2`.`FeO(s) + CO(g) hArr Fe(s) + CO_2(g),K_p.`=0.265 atm at 1050 K.What are the equilibrium partial pressures of CO and `CO_2` at 1050K if the initial partial pressures are:`Pco = 1.4 atm and Pco_2 = 0.80 atm?`

Promotional Banner

Similar Questions

Explore conceptually related problems

Dihydrogen gas used in Haber's process is produced by reacting methane form natural gas with high temperature steam..The first stange reaction involves the formation of CO and H_2 .In second stage , CO formed in first stage,CO formed in first stage is reacted with more steam ion water gas shift reaction, CO(g)+ h_2o(g) hArr CO_2(g) +H_2(g) If a reaction vessel at 400^@C is charged with a n equimolar mixture of CO and steam such that P_(co) =P_(H_2O) = 4.0 bar what will be the partial pressure of H_2 at equilibrium? k_p =0.1

Find out the value of K_c for each of the following equilibria from the value of K_p : CaCO_3 (s) hArr CaO(s) + CO_2(g) , K_p=167 at 1073 K

Which of the following reactions will get affected by increasing the pressure ?Also mention whether change will cause the reaction to go into forward or backward direction. CaCo_3(s)hArr CaO(s)+CO_2(G)

From the rate expression for the following reactions determine their order of reaction and the dimensions of the rate constants:- CH_3CHO(g) rarr CH_4(g) + CO(g) , Rate = k[CH_3CHO]^(3//2)

One mole of H_2O and one mole of CO are taken in 10L vessel and heated to 725 K.At equilibrium 40% of water (by mass) reacts with CO according to the equatin H_2O(g0 + CO(g) hArr H_2(g) +CO_2(g) Calculate the equilibrium constant for the reaction.

22 g of CO_2 are compressed isothermally and reversibly at 298 K frominitial pressure of 100 Kpa when the work obtained is 1.2 KJ. Find the final pressure.

Calculate heat of formation of carbon dioxide at constant volume at 300 K. Given that: C(s)+O2(g) rarr CO_2(g) Delta H=-393kJ

A sample of HI(g) is placed in flask at a pressure of 0.2f atm.At equilibrium the partial pressure of HI(g) is 0.04 atm.What is K_p for the given equilibrium? 2HI (g) hArr H_2 (g) + I_2(g)