1 2 Part A Calculate Kp at 298 K for the reaction NO(g) + + O2(g) → NO2 (g) assuming that AH is constant over the inte...
Part A Calculate KP at 298 K for the reaction NO(g)+12O2(g)→NO2(g) assuming that ΔH∘R is constant over the interval 298-600 K. Part B Calculate KP at 480. K for this reaction assuming that ΔH∘R is constant over the interval 298-600 Part C Do you expect KP to increase or decrease as the temperature is increased to 600. K? a) to increase b)to decrease
23 A) For the reaction 2CH4(g)⇌C2H2(g)+3H2(g) Kc = 0.130 at 1651 ∘C . What is Kp for the reaction at this temperature? 23 B) For the reaction N2(g)+3H2(g)⇌2NH3(g) Kp= 3.40×10−3 at 292 ∘C. What is Kc for the reaction at this temperature? Part A For the reaction 2CH (g) = C2H2(g) + 3H2(g) Kc = 0.130 at 1651 °C. What is K, for the reaction at this temperature? Express your answer numerically. View Available Hint(s) V AC ? K Kp...
For the reaction 2CH4(g) = C2H2 (g) + 3H2 (8) Kc = 0.160 at 1775 °C. What is Kp for the reaction at this temperature? Express your answer numerically. ► View Available Hint(s) PO AQ * R O ? Kp = Submit Part B For the reaction N2(g) + 3H2(g) = 2NH3(g) Ko = 2.80x10-3 at 322 °C. What is K, for the reaction at this temperature? Enter your answer numerically. View Available Hint(s)
The reaction below has an equilibrium constant of Kp=2.26×104 at 298 K. CO(g)+2H2(g)⇌CH3OH(g) Part A Calculate Kp for the reaction below. CH3OH(g) CO(g)+2H2(g) Submit My Answers Give Up Part B Reactants will be favored at equilibrium. O Products will be favored at equilibrium. Submit My Answers Give Up Part C Calculate Kp for the reaction below. 를 CO (g) + H2 (g)- CH, OH (g) K=
Calculate KP at 499 K for the reaction NO(g) + 1/2O2(g) → NO2(g) assuming that ΔH°R is constant over the interval 298-600 K.
The equilibrium constant, Kp, for the following reaction is 0.160 at 298 K. Calculate K, for this reaction at this temperature. 2NOBr(g) 2NO(g) + Br2(g) Kc =
Determine Kc at 298 K for the reaction 2CH4(g) following data at 298 K: C2H2(g) 3H2(g), given the CH4 (g) H20g) CO(g) 3 H2(g) К = 2.01 x 10-28 2C2H2(g)302(g) 4C0(g)2 H20(g) = 4.50 H2 (g)02(g) H20(g) Ke 5.44 x 1040
10a 10b. The equilibrium constant, Kp for the following reaction is 0.110 at 298 K. Calculate Kc for this reaction at this temperature. NH4HS(s) NH3+ H2S(g) Ko The equilibrium constant, Kc, for the following reaction is 5.10x10-6 at 548 K. Calculate Kp for this reaction at this temperature NH4CI(sNH)+ HCI(g) Kp
For the reaction 2CH4(g)⇌C2H2(g)+3H2(g) 2 C H 4 ( g ) ⇌ C 2 H 2 ( g ) + 3 H 2 ( g ) K c = 0.135 at 1615 ∘C . What is Kp for the reaction at this temperature? Express your answer numerically. For the reaction N2(g)+3H2(g)⇌2NH3(g)N2(g)+3H2(g)⇌2NH3(g) KpKp = 5.15×10−3 at 333 ∘C . What is Kc for the reaction at this temperature? Enter your answer numerically.
The reaction below has an equilibrium constant of Kp = 2.26 x 104 at 298 K. CO(g) + 2H2(g) = CH3OH(9) Part A Calculate Kp for the reaction below. CH3OH(g) = CO(g) + 2H2(g) Express your answer to three significant figures. Ky = 4.42-10-5 Submit Previous Answers Completed Part B Calculate K, for the reaction below. CO(g) + H2(g) = = CH3OH(g) Express your answer to three significant figures. ΟΙ ΑΣΦ ? K = Part C Calculate K, for the...