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Summary SCH4U / AP Chem: Chemical Equilibrium Problem Types Study Guide (ICE Tables, Keq, Qc)

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Master every variation of chemical equilibrium exam questions with this comprehensive, high-yield problem-solving guide. Designed specifically for advanced high school and introductory college chemistry courses, this resource breaks down the four core equilibrium problem types into clear, actionable strategies. Learn exactly how to calculate Keq from equilibrium concentrations, set up and solve ICE tables using initial amounts, apply advanced algebraic methods (perfect squares, the quadratic formula, and approximations) to find unknown concentrations, and utilize the reaction quotient (Qc) to accurately predict shifting directions. Packed with clear formulas, foundational rules, and fully worked chemistry examples, this study guide serves as the ultimate blueprint to eliminate confusion and secure a top grade on test day.

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Chemical Equilibrium — Problem Types


Type 1

Given:

●​ All equilibrium [ ]'s
●​ Calculate K_eq

Strategy: i) Write K_eq expression, substitute and solve ii) K_eq value has NO units

Example

At equilibrium, [H₂] = 0.46 mol/L, [I₂] = 0.39 mol/L and [HI] = 3 mol/L. What is the value of the
equilibrium constant if temperature is constant?

Reaction: H₂(g) + I₂(g) ⇌ 2HI(g)

K_eq expression:

K_eq = [HI]² / [H₂][I₂] = (3)² / (0.46)(0.39)

K_eq = 50.2




Type 2

Given: i) All initial [ ] or # of moles ii) One equilibrium [ ] or # of moles

Calculate: i) All equilibrium [ ]'s ii) K_eq

Strategy: i) Use ICE method to calculate equilibrium [ ]'s / amounts ii) Use K_eq expression to
calculate K_eq




Example

In a 10.0 L flask, initially there are 0.4 mol of PCl₅. At equilibrium, there are 0.250 mol of Cl₂.
Calculate all the equilibrium [ ]'s and the K_eq value.



Reaction: PCl₅(g) ⇌ PCl₃(g) + Cl₂(g)

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