CRHS Academic Chemistry Unit 15 Thermochemistry HOMEWORK. Due Date Assignment On-Time (100) Late (70)

Similar documents
CRHS Academic Chemistry Unit 15 Thermochemistry HOMEWORK. Due Date Assignment On-Time (100) Late (70)

Unit 15 Energy and Thermochemistry Notes

Unit 15 Energy and Thermochemistry Notes

Name Class Date. As you read Lesson 17.1, use the cause and effect chart below. Complete the chart with the terms system and surroundings.

Ch. 17 Thermochemistry

Name: General Chemistry Chapter 11 Thermochemistry- Heat and Chemical Change

Chapter 11 Thermochemistry Heat and Chemical Change

CRHS Academic Chemistry. 14 Thermochemistry. Homework. Notes, Homework, Exam Reviews and Their KEYS located on CRHS Academic Chemistry

Energy and Chemical Change

CHAPTER 17 Thermochemistry

Name Date Class THERMOCHEMISTRY

33. a. Heat is absorbed from the water (it gets colder) as KBr dissolves, so this is an endothermic process.

Thermochemistry. Energy and Chemical Change

Name: Class: Date: ID: A

1. Fill in the blanks with the following: kinetic, potential, chemical, thermal. One word will be used twice.

Thermochemistry: Heat and Chemical Change

Energy Ability to produce change or do work. First Law of Thermodynamics. Heat (q) Quantity of thermal energy

Energy and Chemical Change

Accelerated Chemistry Study Guide Chapter 12, sections 1 and 2: Heat in Chemical Reactions

Name Date Class SECTION 16.1 PROPERTIES OF SOLUTIONS

I. The Nature of Energy A. Energy

Energy Ability to produce change or do work. First Law of Thermodynamics. Heat (q) Quantity of thermal energy

Thermochemistry, Reaction Rates, & Equillibrium

Chapter 6 Problems: 9, 19, 24, 25, 26, 27, 31-33, 37, 39, 43, 45, 47, 48, 53, 55, 57, 59, 65, 67, 73, 78-82, 85, 89, 93

Thermochemistry. Energy (and Thermochemistry) World of Chemistry Chapter 10. Energy. Energy

Chapter 5 Thermochemistry

Thermochemistry. Energy and Chemical Change

Energy Changes in Reactions p

CHAPTER 17: THERMOCHEMISTRY. Mrs. Brayfield

Name Date Class THE FLOW OF ENERGY HEAT AND WORK

THERMOCHEMISTRY. This section explains the relationship between energy and heat, and distinguishes between heat capacity and specific heat.

Name: Thermochemistry. Practice Test C. General Chemistry Honors Chemistry

Types of Energy Calorimetry q = mc T Thermochemical Equations Hess s Law Spontaneity, Entropy, Gibb s Free energy

Warm up. 1) What is the conjugate acid of NH 3? 2) What is the conjugate base of HNO 2? 3) If the ph is 9.2, what is the [H 3 O + ], poh, and [OH - ]?

ADDITIONAL RESOURCES. Duration of resource: 21 Minutes. Year of Production: Stock code: VEA12052

Energy Transformations

Thermochemistry: the study of energy (in the from of heat) changes that accompany physical & chemical changes

Mr Chiasson Advanced Chemistry 12 / Chemistry 12 1 Unit B: Thermochemical Changes

Energy and Chemical Change

CP Chapter 17 Thermochemistry

The Nature of Energy Energy is the ability to do work or produce Heat, q or Q, is ; flows due to temperature differences (always to )

Thermochemistry. Questions to ponder. Because 4/20/14. an ice-cube? an ice-cube? Part 2: Calorimetry. But I KNOW. Q=mc T, but T=0

Chapter 17 Thermochemistry

CHEMISTRY: Chapter 10 Prep-Test

Thermochemistry. Energy. 1st Law of Thermodynamics. Enthalpy / Calorimetry. Enthalpy of Formation

Topic 05 Energetics : Heat Change. IB Chemistry T05D01

Chemistry 30: Thermochemistry. Practice Problems

CHAPTER 16 REVIEW. Reaction Energy. SHORT ANSWER Answer the following questions in the space provided.

Notes: Matter and Change

Practice Packet: Energy. Regents Chemistry: Dr. Shanzer. Practice Packet. Chapter 4: Energy.

Chemistry Chapter 16. Reaction Energy

I. Chemical Reactions that Involve Heat

CHEM 1105 S10 March 11 & 14, 2014

2. What is a measure of the average kinetic energy of particles? (A) heat capacity (B) molar enthalpy (C) specific heat (D) temperature

Chapter 6. Heat Flow

11B, 11E Temperature and heat are related but not identical.

Slide 2 / 118. Thermochemistry

Chapter 6: Thermochemistry

Lab #9- Calorimetry/Thermochemistry to the Rescue

Thermodynamics- Chapter 19 Schedule and Notes

Chapter 5 THERMO. THERMO chemistry. 5.4 Enthalpy of Reactions 5.5 Calorimetry 5.6 Hess s Law 5.7 Enthalpies of Formation

Unit 3, Lesson 02: Enthalpy Changes in Chemical Reactions

Chapter 5. Thermochemistry

Chapter 5: Thermochemistry. Problems: , , 5.100, 5.106, 5.108, , 5.121, 5.126

2. Calculate the heat change in joules when 45.2 g of steam at C condenses to water at the same temperature.!

Chemical Reactions Chapter 17 Study Guide (Unit 10)

Chapter 6 Thermochemistry

The Nature of Energy. Chapter Six: Kinetic vs. Potential Energy. Energy and Work. Temperature vs. Heat

The following gas laws describes an ideal gas, where

Chapter 8 Thermochemistry: Chemical Energy. Chemical Thermodynamics

THIS LAB IS CHAOS! 2. In liquids or gases? Explain.

Thermochemistry. The study of energy changes that occur during chemical reactions and changes in state.

What is energy??? The ability to do work or produce heat. Potential Energy (PE) energy due to position or composition

THERMOCHEMISTRY & DEFINITIONS

Chapter 6. Thermochemistry

THERMODYNAMICS. Energy changes in reactions Text chapter 3, 4, 5, 6 & 7

Note: 1 calorie = 4.2 Joules

Thermochemistry. Section The flow of energy

Chemistry Heat Review. Heat: Temperature: Enthalpy: Calorimetry: Activation energy:

Saturday Study Session 1 3 rd Class Student Handout Thermochemistry

Chemistry Spring 2018 Final Exam Review

Practice Test: Energy and Rates of Reactions

Chapter 6. Thermochemistry

Energetics. Topic

Lecture Presentation. Chapter 6. Thermochemistry. Sherril Soman Grand Valley State University Pearson Education, Inc.

Chapter 11. Thermochemistry: Heat & Chemical Change

Unit 14. States of Matter & Thermochemistry

2. If the volume of a container holding a gas is reduced, what will happen to the presure within the container?

Chapter 16 Theories of Energy Changes

CHAPTER 16: REACTION ENERGY AND CHAPTER 17: REACTION KINETICS. Honors Chemistry Ms. Agostine

17.4 Calculating Heats Essential Understanding Heats of reaction can be calculated when it is difficult or

UNIT 15 - Reaction Energy & Reaction Kinetics. I. Thermochemistry: study of heat in chemical reactions and phase changes

Unit 7 Kinetics and Thermodynamics

Chapter 17: Energy and Kinetics

Chapter 8 Thermochemistry: Chemical Energy

2 Copyright Pearson Education, Inc., or its affiliates. All Rights Reserved.

Chapter 6. Thermochemistry

Chapter 11. Thermochemistry. 1. Let s begin by previewing the chapter (Page 292). 2. We will partner read Pages

Chapter 15 Energy and Chemical Change

Chemistry Grade : 11 Term-3/Final Exam Revision Sheet

Transcription:

Name Period CRHS Academic Chemistry Unit 15 Thermochemistry HOMEWORK Due Date Assignment On-Time (100) Late (70) 15.1 15.2 15.3 15.4 Warm Ups Extra Credit Notes, Homework, Exam Reviews and Their KEYS located on CRHS Academic Chemistry Website: https://cincochem.pbworks.com

Page 2 of 12 Warm-Up Unit 15 Homework #1 #6 #2 #7 #3 #8 #4 #9 #5 #10

HW 15.1 MATTER AND ENERGY Unit 15 Homework Page 3 of 12 1. (TRUE / FALSE) Heat energy cannot be transferred but can be lost. 2. If you place an ice cube in a bowl of hot soup, how will heat flow? The ( ICE CUBE / HOT SOUP ) will transfer ( COLD / HEAT ) energy to the ( ICE CUBE / HOT SOUP). 3. energy is stored in the bonds of molecules. 4. energy is related to thermal energy. 5. What are the 3 ways heat can be transferred? _ 6. Conduction, convection, or radiation? a. The heat you feel from a fireplace b. Boiling water _ c. Heat you feel from a hot stove _ d. Frying a pancake _ e. Fast particles colliding with slower particles _ f. Air travels this way _ g. Transfer through solids _ h. Transfer through space _ i. Moves as a wave j. Moves as a current _ k. Sun rays reaching earth _ l. Occurs with fluids 7. In chemistry lab, you pour 100 ml of vinegar into a beaker. You measure the temperature of the sample and find that it is 20 C. You add a tablespoon of calcium chloride to the vinegar and measure the temperature again. You find that it has risen to 24 C. What type of chemical reaction has taken place? ( EXOTHERMIC / ENDOTHERMIC ) How do you know?

Page 4 of 12 Unit 15 Homework 8. As water freezes in a freezer, heat is removed from water molecules, slowing their movement enough to allow them to freeze. ( EXOTHERMIC / ENDOTHERMIC ) How do you know? _ 9. You sit down on a steel bench in the middle of summer. The sun has been beating down on the bench for hours. Heat in the bench transfers to your skin, causing first degree burns and significant mental anguish. From the point of view of the bench, is this ( EXOTHERMIC / ENDOTHERMIC ) How do you know?

HW 15.2 HEAT CALCULATIONS Unit 15 Homework Page 5 of 12 1. What is specific heat capacity? 2. On a sunny day, why does the concrete deck around an outdoor swimming pool become hot, while the water stays cool? 3. Using calories, calculate how much heat 32.0 g of water absorbs when it is heated from 25.0 C to 80.0 C. Look at the chart in your notes for the specific heat capacity of water. 4. When 435 J of heat is added to 3.4 g of olive oil at 21 C, the temperature increases to 85 C. What is the specific heat of olive oil? 5. How much heat is required to raise the temperature of 250.0 g of mercury 52 C? Look at the chart in your notes for the specific heat of mercury. 6. How much heat in kilojoules must be added to 178 g of water to increase the temperature of the water by 5.0 C?

Page 6 of 12 Unit 15 Homework 7. When calcium chloride (CaCl 2) dissolves in water, heat is released. This is called the heat of solution. When 10 grams of CaCl 2 are dissolved in 505 grams of water at 25 C in an insulated container, the temperature of the water elevates to 47.1 C. What is the heat of solution for this mass of CaCl 2? 8. A calorimeter has 230g of an unknown fluid at 22.0 C. A sample of metal transfers 1109 Joules of heat into the fluid and the temperature rises to 28.3 C. What is the specific heat capacity of the fluid? 9. A 52.3 gram sample of aluminum is combusted in a bomb calorimeter. The aluminum goes from 24.5 C to a maximum of 325.4 C. The bomb contains 312 grams of water at 24.5 C before the reaction begins. What was the total temperature change of the water? What was the final temperature of the water? The specific heat of aluminum is 0.89 J/g- C.

HW 15.3 WHAT IS THERMOCHEMISTRY? Unit 15 Homework Page 7 of 12 1. What is the definition of thermochemistry - 2. What is the System in a chemical reaction?. 3. What is the Surroundings in a chemical reaction?. 4. Explain the source of heat in an exothermic chemical reaction. 5. Classify these processes as exothermic or endothermic. (Think about whether the object is gaining or releasing heat.) A. Burning rubbing alcohol ( exothermic / endothermic ) B. Cooking an egg ( exothermic / endothermic ) C. Combustion of gasoline ( exothermic / endothermic ) 6. Indicate whether Enthalpy of Reaction (ΔH) is positive (+) or negative ( ) for the following: A. the reactants have > enthalpy than the products ΔH = B. the products have > enthalpy than the reactants ΔH = C. the surroundings lose heat as a reaction occurs ΔH = D. the temperature increases as a reaction occurs ΔH = 7. Label the graphs as endothermic or exothermic.

Page 8 of 12 Unit 15 Homework Determine the ΔH for the following reactions. 3. N 2 (g) + O 2 (g) + 43.3 kj 2 NO (g) ΔH = 4. 2 C 2H 6 (g) + O 2 (g) 4 CO 2 (g) + 6 H 2O (l) + 683.5 kj ΔH = 5. C 3H 8 (g) C 3H 8 (l) + 41.8 kj ΔH = Rewrite the following equations by expressing the energy change as a term in the equation: a) H 2O (g) H 2O (l) ΔH = -10.76 kj b) 4 Al + 3 O 2 2 Al 2O 3 ΔH = -803.8 kj c) 2 H 2SO 4 2 SO 2 + 2 H 2O + O 2 ΔH = 130.6 kj

Unit 15 Homework Page 9 of 12 HW 15.4 DRIVING FORCES FOF CHEMICAL REACTIONS 1. In nature, reactions tend to proceed in a direction that leads to energy state. 2. Explain why some endothermic reactions do occur.. 3. What is Entropy? 4. In nature there is tendency to proceed in direction that INCREASES / DECREASES the randomness of a system. 5. Chemical reactions tend to go in direction of DECREASING/INCREASING order. 6. Predict whether the value of S for each of the following reactions will greater than, less than, or equal to zero. C 3CO 2(s) + 5O 2(g) 3 CO 2(g) + 4 H 2O(g) 3O 2 (g) + P 2 (g) 2 PO 3 (g) NaCl (s) Na + 1(aq) + Cl -1 (aq) 2Ca (s) + Cl 2 (g) -> 2 CaCl 2 (s) 7. Decide if G can ever be negative and therefore the reaction is spontaneous and fill in 3 rd column with conclusions. H S G - value (exothermic) + value (more random) - value (exothermic) - value (less random) + value (endothermic) + value (more random) + value (endothermic -value (less ransom) Predict whether the reactions will be spontaneous at 298K by calculating G o from the given enthalpies and entropies. 8. NH 4Cl (s) NH 3 (g) + HCl (g) H o = -+176 kj/mol and S o = +0.2857 kj/(mol*k) 9. C (s) + O 2 (g) CO 2 (g) + 393 kj S o = 0.00300 kj/(mol*k)

Page 10 of 12 Unit 15 Homework

Unit 15 Homework Page 11 of 12 Extra Credit - THERMOCHEMISTRY Across 3. in an endothermic reaction heat is 6. 1 calorie = 4.184 8. heat flows from a object to a cooler object 9. accurate and precise measurement of heat change in a reaction 11. type of energy stored in chemical or nuclear bonds 12. heat flows out of system - system warms - negative change in enthalpy 15. type of energy a type of potential energy stored in bonds between atoms in a substance 17. heat of a system at constant pressure 19. type of energy total of all energy of position and movement of the particles in a system 21. type of energy - due to motion Down 1. substance on right side of reaction 2. a equation must be balanced 4. capacity for doing work or supplying heat 5. heat capacity is an property of matter 7. change in enthalpy of a reaction is the same with one step or many steps (answer is HESS S LAW) 10. heat enters the system - system cools - positive change in enthalpy 13. water has a specific heat capacity (c) 14. water can hold a amount of heat 16. substance on left side of reaction 18. energy that transfers from one object to another because of temperature difference 20. In an exothermic reaction heat is 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21

Page 12 of 12 Unit 15 Homework