Download presentation
Presentation is loading. Please wait.
Published byWinifred Cole Modified over 9 years ago
1
Chemistry GT 6/9/15
2
No Drill – drill Quiz Take out a sheet of notebook paper. On it, write the Questions AND Answers for these drills: 5/5, 5/28 When done, please empty your folder (in the back) HW: pg. 7 Potential Energy Diagrams & pg. 8 Reaction Rate Review
3
Objectives IWBAT explain chemical equilibrium as a dynamic system. use Le Chatelier’s Principle to predict the effects of changes to a chemical system. Describe the factors that affect reaction rate. Explain reaction rate using Collision Theory
4
Drill Finish Rxn Rate Notes Practice with Energy Diagrams More about K eq Closure Agenda
5
Rxn Rates PPT
6
Back of pg. 7 Practice
7
Label each diagram with the following: Endothermic or exothermic Activation Energy H (change in heat) Energy of reactants Energy of Products
8
9
10
11
12
Explain the changes that happen when a catalyst is added.
14
Equilibrium Constant Expresses the relative concentrations of reactants and products at equilibrium by using an “equilibrium constant” – K eq a A + b B c C + d D
15
Equilibrium Constant Only include gases and aqueous solutions when writing equilibrium constants Solids and liquids are not included They can be represented with a [1] or left out entirely
16
Types of Equilibrium Problems Quantitative K eq < 1, then the reaction is reactant-favored at equilibrium COCl 2(g) CO (g) + Cl 2(g) K eq = 2.2 x 10 -10 Reactant-favored
17
Types of Equilibrium Problems K eq > 1, then the reaction is product- favored at equilibrium 2 NO 2(g) N 2 O 4(g) K eq = 2.15 x 10 2 Product-favored
18
K eq and Stresses on the system K eq does not change with change in concentration It will change based on change in temperature and change of pressure
19
Quantitative (uses the K eq equation) Write the equilibrium expression for the following reaction 2 SO 2(g) + O 2(g) 2 SO 3(g) Types of Equilibrium Problems [SO 3 ] 2 [SO 2 ] 2 [O 2 ] K eq = ____________
20
Types of Equilibrium Problems If.0172 M of O 2,.0250 M of SO 2 and.00140 M of SO 3 at equilibrium, calculate K eq [SO 3 ] 2 [SO 2 ] 2 [O 2 ] K eq = ___________ = [.00140] 2 [.0250] 2 [.0172] _______________ K eq =.18 (reactant favored)
21
Exit Ticket Given the following reaction: Use Le Chatelier’s principle to determine what would happen if the following changes were made Increase the concentration of N 2 Increase the concentration of NH 3 Remove NH 3 from the reaction after it is made
Similar presentations
© 2025 SlidePlayer.com. Inc.
All rights reserved.