Write the equilibrium expression for the following reactions: 1 2 H2(g) + O2(g) 4) 2 H20(g) [H,0]² [H]" [0.] %3D I NH3(aq) + H20(1) [NH;]TOH] NH3] NH4+(aq) + OH-(aq) 5) You place 3.00 mol of pure SO3 in an 8.00-L flask at 1150 K. At equilibrium, 0.58 mol of O2 has been formed. Calculate K for the reaction at 1150 K. 2 SO3(g) 2 SO2(g) + O2(g) Kp= [0.][So.]' by So,7 03]² 6) 2.00 mol of NOCI is added to 1.00 L flask. At equilibrium the concentration of NO(g) is found to be 0.66 mol/L. What is the value of K? 2NOCI(g) + 2NO(g) + Cl2(g)

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Number 5) is my question. Finding K for the reaction at 1150K.

Write the equilibrium expression for the following reactions:
1 2 H2(g) + O2(g)
4)
2 H20(g)
[H,0]²
[H]" [0.]
%3D
I NH3(aq) + H20(1)
[NH;]TOH]
NH3]
NH4+(aq) + OH-(aq)
5) You place 3.00 mol of pure SO3 in an 8.00-L flask at 1150 K. At equilibrium, 0.58 mol of
O2 has been formed. Calculate K for the reaction at 1150 K.
2 SO3(g) 2 SO2(g) + O2(g)
Kp= [0.][So.]'
by
So,7
03]²
6) 2.00 mol of NOCI is added to 1.00 L flask. At equilibrium the concentration of NO(g) is
found to be 0.66 mol/L. What is the value of K?
2NOCI(g) + 2NO(g) + Cl2(g)
Transcribed Image Text:Write the equilibrium expression for the following reactions: 1 2 H2(g) + O2(g) 4) 2 H20(g) [H,0]² [H]" [0.] %3D I NH3(aq) + H20(1) [NH;]TOH] NH3] NH4+(aq) + OH-(aq) 5) You place 3.00 mol of pure SO3 in an 8.00-L flask at 1150 K. At equilibrium, 0.58 mol of O2 has been formed. Calculate K for the reaction at 1150 K. 2 SO3(g) 2 SO2(g) + O2(g) Kp= [0.][So.]' by So,7 03]² 6) 2.00 mol of NOCI is added to 1.00 L flask. At equilibrium the concentration of NO(g) is found to be 0.66 mol/L. What is the value of K? 2NOCI(g) + 2NO(g) + Cl2(g)
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