Predict the correct equilibrium expression (K) for the reaction: Sb2S3() + 3H2(g) 2Sb(s) + 3H2S(g) о...
Predict the correct equilibrium expression (K) for the reaction: Sb2S3(s) + 3H2(g) = 2Sb(s) + 3H2(g) o [Sb,][H] [sb]? [H,S] [H,S] [H,] o o 1 o [H,S] [H.] [H.] [H,S] [sb] [Sb S3][H,]
1. For the reaction H2S(g) + 2H2O(l)3H2(g) + SO2(g) H° = 295.4 kJ and S° = 294.7 J/K The equilibrium constant for this reaction at 345.0 K is _____ Assume that H° and S° are independent of temperature. 2. For the reaction H2+ C2H4 -> C2H6 H° = -137.0 kJ and S° = -120.7 J/K The equilibrium constant for this reaction at 264.0 K is ______. Assume that H° and S° are independent of temperature
1-Consider the following reaction at equilibrium. The Kc value for the reaction at 295 K is 1.20 x 10-4. NH4HS (s) ⇌ NH3 (g) + H2S (g) a. Calculate the Kp value at 295 K. b. Determine the partial pressure of each gas at equilibrium. c. Calculate the Kc value of the following reaction. 3NH3 (g) + 3H2S (g) ⇌ 3NH4HS (s)
20. If K =(0.92) at a (150°C) for the equilibrium reaction: CO(g) + 3H2(g) CH(g) + H2O(g) The K of the reaction is : A) 5.63x 104 B) 2.32 x10+ C) 4.20 x105 D ) 3.29 x 109. Putor (*): 1. Reaction in which entire amount of the reactants is not converted into products is termed as reversible reaction ( ). 2. For exothermic reactions raising the temperature causes a shift to the right (X). 3. If the number of...
Write the equilibrium constant expression, K, for the following reaction: (If either the numerator or denominator is blank, please enter 1.) 2NH3(g) = N2(g) + 3H2(g) K Write the equilibrium constant expression, K, for the following reaction: If either the numerator or denominator is blank, please enter 1 SO2Cl(s) FSO2(g) + Cl2(8) K Write the equilibrium constant expression, K, for the following reaction: (If either the numerator or denominator is blank, please enter 1.) 2SO2(g) + O2(g) = 2803 (8)...
1.) or the reaction Fe2O3(s) + 3H2(g)2Fe(s) + 3H2O(g) H° = 98.8 kJ and S° = 142.5 J/K The equilibrium constant for this reaction at 348.0 K is 2.) For the reaction C2H4(g) + H2O(g)CH3CH2OH(g) H° = -45.6 kJ and S° = -125.7 J/K The equilibrium constant for this reaction at 275.0 K is looking for the equilibrium constants
a. 14. What is the correct equilibrium constant expression for the following reaction? CO2(g) + 2H2O(8) CH4(g) + 2O2(g) Poo, PH₂O PcH, X PO, Рcн, хро, K= b. Pool x Pн,о c. K= Pch, *(Po,) Pco, x (Ph,0) Pco, (P2,0) Pch, *(Po,) d. 1 K- e, none of the above
The equilibrium constant expression K p for the reaction 2NH 3 (g) ↔ N2 (g) + 3H2 (g) is __________. A. Kp = PN2(3PH2)3/(2PNH3)2 B. Kp = PNH32/PN2PH23 C. Kp = (2PNH3)2/PN2(3PH2)3 D. Kp = PN2PH23/PNH32
The equilibrium constant, K , for the following reaction is 1.80x104 at 298 K. NH_HS(s) NH3(g) + H :) Calculate the equilibrium concentration of H2S when 0.202 moles of NH HS(s) are introduced into a 1.00 L vessel at 298 K. [H2S] = M
For the reaction CH4(g) + H2O(g)3H2(g) + CO(g) H° = 206.1 kJ and S° = 214.7 J/K The equilibrium constant for this reaction at 264.0 K is Assume that H° and S° are independent of temperature.