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6 Nov 2019

A. Consider the following reaction where Kp = 2.20×104 at 723 K.

2NH3(g) N2(g) + 3H2(g)

If the three gases are mixed in a rigid container at 723 K so that the partial pressure of each gas is initially one atm, what will happen?

Indicate True (T) or False (F) for each of the following:

___TF 1. A reaction will occur in which NH3(g) is consumed.
___TF 2. Kp will increase.
___TF 3. A reaction will occur in which N2 is produced.
___TF 4. Qp is less than Kp.
___TF 5. The reaction is at equilibrium. No further reaction will occur.

B. Consider the following reaction where Kp = 2.01 at 500 K:

PCl3(g) + Cl2(g) PCl5(g)

If the three gases are mixed in a rigid container at 500 K so that the partial pressure of each gas is initially one atm, what will happen?

Indicate True (T) or False (F) for each of the following:

___TF 1. A reaction will occur in which PCl5(g) is produced.
___TF 2. Kp will decrease.
___TF 3. A reaction will occur in which PCl3 is produced.
___TF 4. Q is less than K.
___TF 5. The reaction is at equilibrium. No further reaction will occur.

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Tod Thiel
Tod ThielLv2
14 Apr 2019

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