The following practice quiz contains 26 questions. The actual quiz will also contain 26 questions valued at 1 point/question

Size: px
Start display at page:

Download "The following practice quiz contains 26 questions. The actual quiz will also contain 26 questions valued at 1 point/question"

Transcription

1 hem 121 Quiz 3 Practice Winter 2018 The following practice quiz contains 26 questions. The actual quiz will also contain 26 questions valued at 1 point/question Name KEY G = T S PV = nrt P 1 V 1 = P 2 V 2 P 1 /T 1 = P 2 /T 2 V 1 /T 1 = V 2 /T 2 K = o R =.0821 L atm/mole K g = kp g P T = P A + P B + + P N g = kp g % w/v = (g solute/ml solution)100 M 1 V 1 = M 2 V 2 % 1 V 1 = % 2 V 2 1. Write the net ionic equation when solutions of Ba(N 3 ) 2 and Nal are mixed. If there is no reaction, write N.R. NR 2. Write the net ionic equation when solutions of Ba() 2 and ul 2 are mixed. If there is no reaction, write N.R. u +2 (aq) (aq) u() 2 (s) 3. Write the net ionic equation when solutions of MgS 4 and ul 2 are mixed. If there is no reaction, write N.R. NR

2 4. Please give the products of the following acid-base reaction as shown (do not change lead coefficients). If there is no reaction, write N.R. l + N 3 N 4 l or N l - 5. Please give the products of the following acid-base reaction as shown (do not change lead coefficients). If there is no reaction, write N.R Li Li Not enough hydroxide to pull off both + from carbonic acid 6. Please give the products of the following acid-base reaction as shown (do not change lead coefficients). If there is no reaction, write N.R. 3 P 4 + Al() 3 AlP Please balance the following acid-base reaction. 1 3 P 4 + 3K 1K 3 P Which compound is oxidized and which is reduced in the following reaction? Pyruvic acid + NAD Lactic Acid + NAD + xidized: NAD Reduced: Pyruvic acid Tough one oxidation as loss of (better, loss of electrons holding onto molecule) and reduction as gain of (better, gain of electrons allowing to be added) 9. As we oxidize food to 2, we reduce oxygen to water. An intermediate in the process is hydrogen peroxide, or dihydrogen dioxide. What is the oxidation state of oxygen in hydrogen peroxide? int: you may wish to draw the Lewis structure xidation State: -1 = +1 always, = -2 except when superseded by or as 2

3 10. Ethyl acetate reacts with hydrogen in the presence of a catalyst to yield ethyl alcohol. The balanced chemical equation for the reaction is (l) (g) (l) ow many grams of ethyl alcohol are produced by reaction of 12.0 g ethyl acetate with 2? a g b g c g d g e g (12.0 g )(mol /88.1 g )(2 mol 2 6 /mol )(46.1 g 2 6 /mol 2 6 ) 11. Referring to the preceding question, how many grams of 2 are needed to react with 12.0 g of ethyl acetate? a g b g c g d g e g (12.0 g )(mol /88.1 g )(2 mol 2 /mol )(2.02 g 2 /mol 2 ) 12. Referring again to the generation of ethanol from hydrogen and ethyl acetate, if 12.0 g ethyl acetate are reacted in excess 2 and 3.14 g ethyl alcohol are produced, what is the % yield? a. 100 % b % c % d % e % (3.14 g 2 6 /12.6 g 2 6 ) g theoretical yield from question Reactions that proceed with the evolution of heat energy are termed a. Exothermic b. Endothermic c. Exergonic d. Endergonic

4 14. Is the following reaction spontaneous at 25 o? Please show your work. 2 2 (g) + 2 (g) 2 2 (l) = kj/mol, S = kj/mol K G = T S = kj/mol 298K( kj/ mol K) G = T S = kj/mol kj/ mol = kj/mol Spontaneous? Very much so G << 0 Bonus (1 E): Is the reaction between hydrogen and oxygen spontaneous at all temperatures? If so, briefly explain. If not, at what temperature does the reaction change from spontaneous to non-spontaneous? No, the reaction is exothermic but proceeds with an opposing decrease in entropy. By setting G = 0 we can find the transition temperature: G = 0 = T S T = / S = kj/mol kj/mol K = 1751 K 1751 K = 1478 o, close to the melting point of iron. Notice the negative signs cancel, leaving a positive value for the absolute temperature, as must be the case 15. What are the 3 principal determinants of reaction rate? a. ollisions with energy > E a or temperature b. Number of collisions or concentration of reactants c. rientation of collisions (major mechanism for enzyme catalysis) 16. onsider the important reaction series of reactions which allow us to control our p by regulating our breathing. Please write the equilibrium constant expression for the first reaction, the formation of 2 3 from 3 - and (aq) + + (aq) 2 3 (aq) 2 (g) + 2 (l) K = [ 2 3 ] [ 3 ][ + ] Remember, molar concentration of products divided by the molar concentration of reactants. If there is more than one reactant or product they are multiplied together, and lead coefficients show up as exponents For aa + bb + mm + nn + K = [M]m [N] n [A] a [B] b

5 17. Based on the coupled chemical equations in question 16, what is the effect on the concentration of + in the body if 2 is removed by breathing? a. Increases b. Decreases c. Remains unchanged By the principal of Lehâtelier, removal of 2 causes 2 3 to shift towards [products] 2 and 2, which in turn causes more bicarbonate and + to react and form carbonic acid 18. Which of the following compounds can hydrogen bond with water? a. Nl 3 b. 3 2 c. l 2 d. 3 3 e. All of the above Water acts as both a hydrogen bond donor and hydrogen bond acceptor; essentially, this is why one can simply count oxygen & nitrogen and compare to the number of carbon when determining water solubility 19. Which of the following would you expect to have the highest boiling point? a b c d e Na Sodium indicates there must be an ionic bond and ion-ion interactions are very strong 20. Which of the following would you expect to have the greatest solubility in water? a b c d e Na Sodium indicates there must be an ionic bond and water loves to form ion-dipole interactions. If you see evidence of an ionic bond - game over where water solubility is concerned

6 Temperature ( o ) Vapor Pressure (mm g) What is the relative humidity on a 40 o day if the gas pressure due to water is 9.2 mm g? 100 % 40 o = 55.3 mm g 100(9.2 mm g/55.3 mm g) = 17 % Answer: 17 % 22. What is the dew point for the conditions indicated in question 21? The temperature where equilibrium/saturation is achieved (any temperature below would generate dew as equilibrium reestablishes) Answer: 10 o 23. What is the final pressure in a constant temperature system initially at 1.00 atm gas pressure and 1.00 L that is compressed to 1.00 ml? a x 10 3 atm b x 10 1 atm c x 10 0 atm d x 10-1 atm e x 10-3 atm P 1 V 1 = P 2 V 2 (1.00 atm)(1.00 L) = P 2 (1.00 x 10-3 L) 24. A closed 1.00 L Erlenmeyer flask at -73 o and 3.00 atm pressure is heated to 327 o. What is the final pressure? a atm b atm c atm d atm e atm Volume is a constant so use P 1 /T 1 = P 2 /T 2 remembering to convert to K 3.00 atm/200 K = P 2 /600 K

7 25. Now many moles of [ideal] gas are in a 44.8 L container if the temperature of the system is 819 o and the gas is exerting a pressure of 4.00 atm? a mol b mol c mol d mol e mol Use PV = nrt or n = PV/RT. 819 o = 1092 K. n = (4.00 atm)(44.8 L) (.0821 L atm/mole K)(1092 K) = 2.00 mol Alternatively, given 1.00 mol gas occupies 22.4 L at 1.00 atm and 273 K, double the volume double the moles of gas; 4x temperature, 4x pressure so number of moles of gas doesn t change 26. What is the partial pressure due to water on a day where the P T = mm g, P N2 = mm g, P 2 = mm g, P Ar = 6.9 mm g and P 2 = 0.3 mm g. Show your work. P T = P N2 + P 2 + P Ar + P 2 + P mm g = mm g mm g mm g mm g + P 2 Answer: 18.3 mm g

3Fe +2 (aq) + 2PO 4. NaHCO 3 + H 2 O. Chem 121 Quiz 3 Practice Fall 2017

3Fe +2 (aq) + 2PO 4. NaHCO 3 + H 2 O. Chem 121 Quiz 3 Practice Fall 2017 Chem 121 Quiz 3 Practice Fall 2017 The following quiz contains 22 questions (and bonuses!) valued at 1 point/question Name KEY G = H T S PV = nrt P 1 V 1 = P 2 V 2 P 1 /T 1 = P 2 /T 2 V 1 /T 1 = V 2 /T

More information

The following bonus exercise contains 26 questions valued at 1/3 point/question

The following bonus exercise contains 26 questions valued at 1/3 point/question Chem 121 Bonus Exercise Spring 2018 The following bonus exercise contains 26 questions valued at 1/3 point/question Name G = H T S PV = nrt P 1V 1 = P 2V 2 K = o C + 273 R =.0821 L atm/mole K P 1/T 1 =

More information

The following practice examination contains 38 questions. The actual examination will also contain 38 questions valued at 3 points/question.

The following practice examination contains 38 questions. The actual examination will also contain 38 questions valued at 3 points/question. Chem 121 Exam 3 Practice Winter 2018 The following practice examination contains 38 questions. The actual examination will also contain 38 questions valued at 3 points/question. Name: KEY G = H T S PV

More information

Name: Score: /100. Part I. Multiple choice. Write the letter of the correct answer for each problem. 3 points each

Name: Score: /100. Part I. Multiple choice. Write the letter of the correct answer for each problem. 3 points each Name: Score: /100 Part I. Multiple choice. Write the letter of the correct answer for each problem. 3 points each 1. Which of the following contains the greatest number of moles of O? A) 2.3 mol H 2 O

More information

Name: Score: /100. Part I. Multiple choice. Write the letter of the correct answer for each problem. 3 points each

Name: Score: /100. Part I. Multiple choice. Write the letter of the correct answer for each problem. 3 points each Name: Score: /100 Part I. Multiple choice. Write the letter of the correct answer for each problem. 3 points each 1. Which of the following contains the greatest number of moles of O? A) 2.3 mol H 2 O

More information

1. Balance the following chemical equations: a. C 8 H 18 + O 2 à CO 2 + H 2 O. b. B 5 H 9 + O 2 à B 2 O 3 + H 2 O. c. S 8 + Cl 2 à S 2 Cl 2

1. Balance the following chemical equations: a. C 8 H 18 + O 2 à CO 2 + H 2 O. b. B 5 H 9 + O 2 à B 2 O 3 + H 2 O. c. S 8 + Cl 2 à S 2 Cl 2 EXAM 2 PRACTICE QUESTIONS NOTE- THIS IS ONLY A SELECTION OF POSSIBLE TYPES OF QUESTIONS: REFER TO THE EXAM 2 REVIEW GUIDELINES FOR THE LIST OF LEARNING TARGETS. There will likely be other questions on

More information

CST Review Part 2. Liquid. Gas. 2. How many protons and electrons do the following atoms have?

CST Review Part 2. Liquid. Gas. 2. How many protons and electrons do the following atoms have? CST Review Part 2 1. In the phase diagram, correctly label the x-axis and the triple point write the names of all six phases transitions in the arrows provided. Liquid Pressure (ATM) Solid Gas 2. How many

More information

cp final review part 2

cp final review part 2 Name: Class: Date: cp final review part 2 Multiple Choice Identify the letter of the choice that best completes the statement or answers the question. 1. Standard conditions when working with gases are

More information

Melting. Freezing. Triple Point. Sublimation. Deposition. Temperature. 2. How many protons and electrons do the following atoms have?

Melting. Freezing. Triple Point. Sublimation. Deposition. Temperature. 2. How many protons and electrons do the following atoms have? CST Review Part 2 1. In the phase diagram, correctly label the x-axis and the triple point write the names of all six phases transitions in the arrows provided. Melting Liquid Freezing Pressure (ATM) Solid

More information

Representative Questions Exam 3

Representative Questions Exam 3 Representative Questions Exam 3 1. The kinetic-molecular theory of gases assumes which of the following? a. gas samples are mostly empty space b. the average kinetic energy is proportional to the Kelvin

More information

Thermodynamics. Thermodynamics of Chemical Reactions. Enthalpy change

Thermodynamics. Thermodynamics of Chemical Reactions. Enthalpy change Thermodynamics 1 st law (Cons of Energy) Deals with changes in energy Energy in chemical systems Total energy of an isolated system is constant Total energy = Potential energy + kinetic energy E p mgh

More information

Chemical Reactions. Writing chemical reactions Types of chemical reactions Reactions in aqueous solutions. (ionic equations and solubility rules)

Chemical Reactions. Writing chemical reactions Types of chemical reactions Reactions in aqueous solutions. (ionic equations and solubility rules) Chemical Reactions Writing chemical reactions Types of chemical reactions Reactions in aqueous solutions (ionic equations and solubility rules) Writing Equations REACTANTS PRODUCTS gold (III) sulfide is

More information

2. (12 pts) Write the reactions that correspond to the following enthalpy changes: a) H f o for solid aluminum oxide.

2. (12 pts) Write the reactions that correspond to the following enthalpy changes: a) H f o for solid aluminum oxide. 1. (6 pts) Given the following data at 25 o C: 2 O 3 (g) > 3 O 2 (g) H o = 427 kj O 2 (g) > 2 O (g) H o = 495 kj NO (g) + O 3 (g) > NO 2 (g) + O 2 (g) H o = 199 kj Calculate H o for the following reaction

More information

2nd Semester Exam Review. C. K eq = [N 2][H 2 ]

2nd Semester Exam Review. C. K eq = [N 2][H 2 ] Name: ate: 1. Which pair of formulas represents the empirical formula and the molecular formula of a compound?. H 2 O, 4 H 6 O 4. HO, 6 H 12 O 6 8. Given the reaction at equilibrium: N 2 (g) + 3H 2 (g)

More information

Chapter 1 The Atomic Nature of Matter

Chapter 1 The Atomic Nature of Matter Chapter 1 The Atomic Nature of Matter 1-1 Chemistry: Science of Change 1-2 The Composition of Matter 1-3 The Atomic Theory of Matter 1-4 Chemical Formulas and Relative Atomic Masses 1-5 The Building Blocks

More information

4. Which of the following gas molecules will have the highest average velocity at 500K? a. H 2 b. He c. CH 4 d. C 2H 6

4. Which of the following gas molecules will have the highest average velocity at 500K? a. H 2 b. He c. CH 4 d. C 2H 6 Multiple hoice (3 pts each) 1. In which of the following processes will work be positive? Assume the pressure remains constant for all examples. a. 2(l) 2(g) at constant temperature b. 2 8 18(l) + 25 2(g)

More information

IB Chemistry Solutions Gasses and Energy

IB Chemistry Solutions Gasses and Energy Solutions A solution is a homogeneous mixture it looks like one substance. An aqueous solution will be a clear mixture with only one visible phase. Be careful with the definitions of clear and colourless.

More information

Chemistry I Practice Exam

Chemistry I Practice Exam Chemistry I Practice Exam Name Multiple Choice: Choose the best answer that completes each statement. Put all answers on your answer sheet. 1. The mass of one mole of NaCl is a..53 g b. 22.99 g c. 5.44

More information

CHEM 150 Exam 2. Name Multiple Choice Identify the letter of the choice that best completes the statement or answers the question.

CHEM 150 Exam 2. Name Multiple Choice Identify the letter of the choice that best completes the statement or answers the question. CHEM 150 Exam 2 Name Multiple Choice Identify the letter of the choice that best completes the statement or answers the question. _A D 1. Formic acid, HCOOH, is what causes the sting of bee stings. What

More information

B 2 Fe(s) O 2(g) Fe 2 O 3 (s) H f = -824 kj mol 1 Iron reacts with oxygen to produce iron(iii) oxide as represented above. A 75.

B 2 Fe(s) O 2(g) Fe 2 O 3 (s) H f = -824 kj mol 1 Iron reacts with oxygen to produce iron(iii) oxide as represented above. A 75. 1 2004 B 2 Fe(s) + 3 2 O 2(g) Fe 2 O 3 (s) H f = -824 kj mol 1 Iron reacts with oxygen to produce iron(iii) oxide as represented above. A 75.0 g sample of Fe(s) is mixed with 11.5 L of O 2 (g) at 2.66

More information

Chem 127, Final Exam December 14, 2001

Chem 127, Final Exam December 14, 2001 I. (55 points) This part of the final corresponds to Exam I. It covers the material in Chapters 1, 2 and 3. A. (8 points) Fill in the empty boxes with the appropriate symbol, number, word or charge. Nuclear

More information

CHEMISTRY. Section II (Total time 95 minutes) Part A Time 55 minutes YOU MAY USE YOUR CALCULATOR FOR PART A.

CHEMISTRY. Section II (Total time 95 minutes) Part A Time 55 minutes YOU MAY USE YOUR CALCULATOR FOR PART A. CHEMISTRY Section II (Total time 95 minutes) Part A Time 55 minutes YOU MAY USE YOUR CALCULATOR FOR PART A. CLEARLY SHOW THE METHOD USED AND THE STEPS INVOLVED IN ARRIVING AT YOUR ANSWERS. It is to your

More information

Chemistry 110 Practice Exam 3 (Ch 5,6,7[Energy]) closed-book cannot Cell phones are not allowed during the exam

Chemistry 110 Practice Exam 3 (Ch 5,6,7[Energy]) closed-book cannot Cell phones are not allowed during the exam Chemistry 110 Practice Exam 3 (Ch 5,6,7[Energy]) Note: 1. Sit according to the seat number assigned (ask the TA or the instructor). 2. Use a softhead pencil, fill in you name, z-number, department name

More information

Name:. Correct Questions = Wrong Questions =.. Unattempt Questions = Marks =

Name:. Correct Questions = Wrong Questions =.. Unattempt Questions = Marks = Name:. Correct Questions = Wrong Questions =.. Unattempt Questions = Marks = 1. Which salt is colorless? (A) KMn 4 (B) BaS 4 (C) Na 2 Cr 4 (D) CoCl 2 2. Which 0.10 M aqueous solution exhibits the lowest

More information

Advanced Chemistry Final Review

Advanced Chemistry Final Review Advanced Chemistry Final Review 1. What are the products of complete combustion of hydrocarbons? Hydrocarbons are compounds made of carbon and oxygen. When they burn (combine with oxygen) they form carbon

More information

4. Which one of the following aqueous solutions will have the highest vapor pressure?

4. Which one of the following aqueous solutions will have the highest vapor pressure? Chemistry 12 Final Exam December 14, 2000 FRM A 1. For the following reaction at 1000 K, K p = 3.9 10 2. C(g) + 2 (g) What is the value of K c for this reaction? C 2 (g) A. 4.69 10 6 B. 5.79 10 6 C. 2.75

More information

Chemistry Higher level Paper 1

Chemistry Higher level Paper 1 M15/4/EMI/PM/ENG/TZ1/XX hemistry igher level Paper 1 Thursday 14 May 2015 (afternoon) 1 hour Instructions to candidates Do not open this examination paper until instructed to do so. Answer all the questions.

More information

c. K 2 CO 3 d. (NH 4 ) 2 SO 4 Answer c

c. K 2 CO 3 d. (NH 4 ) 2 SO 4 Answer c Chem 130 Name Exam 2, Ch 4-6 July 7, 2016 100 Points Please follow the instructions for each section of the exam. Show your work on all mathematical problems. Provide answers with the correct units and

More information

CHM 151 Practice Final Exam

CHM 151 Practice Final Exam CM 151 Practice Final Exam 1. ow many significant figures are there in the result of 5.52 divided by 3.745? (a) 1 (b) 2 (c) 3 (d) 4 (e) 5 2. ow many significant figures are there in the answer when 9.021

More information

Chem 105 Final Exam. Here is the summary of the total 225 points plus 10 bonus points. Carefully read the questions. Good luck!

Chem 105 Final Exam. Here is the summary of the total 225 points plus 10 bonus points. Carefully read the questions. Good luck! May 3 rd, 2012 Name: CLID: Score: Chem 105 Final Exam There are 50 multiple choices that are worth 3 points each. There are 4 problems and 1 bonus problem. Try to answer the questions, which you know first,

More information

Equilibrium. What is equilibrium? Hebden Unit 2 (page 37 69) Dynamic Equilibrium

Equilibrium. What is equilibrium? Hebden Unit 2 (page 37 69) Dynamic Equilibrium Equilibrium What is equilibrium? Hebden Unit (page 37 69) Dynamic Equilibrium Hebden Unit (page 37 69) Experiments show that most reactions, when carried out in a closed system, do NOT undergo complete

More information

Chemical Reactions. Chapter 17

Chemical Reactions. Chapter 17 Chemical Reactions Chapter 17 Chemical Equations C+O 2 CO 2 C (s) +O 2 (g) CO 2 (g) Reactants on left, products on right Each are balanced because same number of atoms of reactants as products Some equations

More information

Chapter 8 Thermochemistry: Chemical Energy. Chemical Thermodynamics

Chapter 8 Thermochemistry: Chemical Energy. Chemical Thermodynamics Chapter 8 Thermochemistry: Chemical Energy Chapter 8 1 Chemical Thermodynamics Chemical Thermodynamics is the study of the energetics of a chemical reaction. Thermodynamics deals with the absorption or

More information

Math Without a Calculator for AP Chemistry

Math Without a Calculator for AP Chemistry Math Without a Calculator for AP Chemistry Number Sense 6.02 1000 6.02 0.01 0.1 1000 0.02 1000 0.3 1000 0. 1000 Let fractions be your friends! Fraction Decimal Percent 3/ 0.80 Example: 3.00 1.2 3.00 6

More information

AP CHEMISTRY NOTES 4-1 THERMOCHEMISTRY: ENTHALPY AND ENTROPY

AP CHEMISTRY NOTES 4-1 THERMOCHEMISTRY: ENTHALPY AND ENTROPY AP CHEMISTRY NOTES 4-1 THERMOCHEMISTRY: ENTHALPY AND ENTROPY Reaction Rate how fast a chemical reaction occurs Collision Theory In order for a chemical reaction to occur, the following conditions must

More information

P R A C T I C E T E S T

P R A C T I C E T E S T South Pasadena onors hemistry Name Semester 2 inal Exam Period Date The following information may be helpful. P R A T I E T E S T D = m K = + 273 V M = n V P 1 V 1 P2 V2 T = P V = n R T 1 T R = 0.0821

More information

FORM A. Answer d. b. ideal gas versus non-ideal (or real) gas: (5)

FORM A. Answer d. b. ideal gas versus non-ideal (or real) gas: (5) Chem 130 Name Exam 1, Ch 5-6 October 1, 011 100 Points Please follow the instructions for each section of the exam. Show your work on all mathematical problems. Provide answers with the correct units and

More information

Apply the concept of percent yield to stoichiometric problems. Methanol can be produced through the reaction of CO and H 2 in the presence of a

Apply the concept of percent yield to stoichiometric problems. Methanol can be produced through the reaction of CO and H 2 in the presence of a Apply the concept of percent yield to stoichiometric problems. Methanol can be produced through the reaction of CO and H 2 in the presence of a catalyst. CO (g) + H 2 (g) CH 3 OH (l) If 75.0 g of CO reacts

More information

1. What is the mass percent of sulfur in Al 2 (SO 4 ) 3? A % C % B % D %

1. What is the mass percent of sulfur in Al 2 (SO 4 ) 3? A % C % B % D % 1. What is the mass percent of sulfur in Al 2 (SO 4 ) 3? A. 9.372 % C. 28.12 % B. 21.38 % D. 42.73 % 2. How many grams of phosphorus are in 35.70 g of P 2 O 5? A. 6.359 g C. 15.58 g B. 23.37 g D. 31.16

More information

Chemistry 122 (Tyvoll) ANSWERS TO PRACTICE EXAMINATION I Fall 2005

Chemistry 122 (Tyvoll) ANSWERS TO PRACTICE EXAMINATION I Fall 2005 hemistry 122 (Tyvoll) ANSWERS T PRATIE EXAMINATIN I Fall 2005 1. Which statement is not correct? 1) A volatile liquid has a high boiling point. 2. Which of the following compounds is predicted to have

More information

2nd- Here's another example of a reversible reaction - dissolving salt in a beaker of water, described by the following reaction: NaCl (s)

2nd- Here's another example of a reversible reaction - dissolving salt in a beaker of water, described by the following reaction: NaCl (s) CHEMICAL EQUILIBRIUM AP Chemistry (Notes) Most chemical processes are reversible. Reactants react to form products, but those products can also react to form reactants. Examples of reversible reactions:

More information

**VII-1 C NC *VII-2 C NC I-2 C NC I-3 C NC I-4 C NC II-1 C NC II-2 C NC II-3 C NC IV-1 C NC IV-2 C NC VIII-1 C NC

**VII-1 C NC *VII-2 C NC I-2 C NC I-3 C NC I-4 C NC II-1 C NC II-2 C NC II-3 C NC IV-1 C NC IV-2 C NC VIII-1 C NC **VII-1 N *VII-2 N I-2 N I-3 N I-4 N II-1 N II-2 N II-3 N IV-1 N IV-2 N VIII-1 N EMISTRY 131-01 Quiz 5 Summer 2013 Form B NAME: Key hapter 11: States of Matter A. (2 pts) onsider the structures of the

More information

Q.1 Write out equations for the reactions between...

Q.1 Write out equations for the reactions between... 1 CHEMICAL EQUILIBRIUM Dynamic Equilibrium not all reactions proceed to completion some end up with a mixture of reactants and products this is because some reactions are reversible; products revert to

More information

Chemistry 1A, Spring 2007 Midterm Exam 3 April 9, 2007 (90 min, closed book)

Chemistry 1A, Spring 2007 Midterm Exam 3 April 9, 2007 (90 min, closed book) Chemistry 1A, Spring 2007 Midterm Exam 3 April 9, 2007 (90 min, closed book) Name: KEY SID: TA Name: 1.) Write your name on every page of this exam. 2.) This exam has 34 multiple choice questions. Fill

More information

SUPeR Chemistry CH 222 Practice Exam

SUPeR Chemistry CH 222 Practice Exam SUPeR Chemistry CH 222 Practice Exam This exam has been designed to help you practice working multiple choice problems over the material that will be covered on the first CH 222 midterm. The actual exams

More information

CHAPTERS 4 & 25: Structure of the Atom and Nuclear Chemistry 6. Complete the table: Mass (amu) charge Proton 1 +1 Neutron 1 0 Electron 0-1

CHAPTERS 4 & 25: Structure of the Atom and Nuclear Chemistry 6. Complete the table: Mass (amu) charge Proton 1 +1 Neutron 1 0 Electron 0-1 Name: Date: Period: CP CHEMISTRY SPRING FINAL REVIEW SHEET NOTE: Below are concepts that we have covered in class throughout the year. Questions are organized by chapter/concept to help you study. You

More information

HEMISTRY 110 EXAM 3 April 6, 2011 FORM A When the path is blocked, back up and see more of the way. 1. A 250 L vessel is evacuated and then connected to a 50.0 L bulb with compressed nitrogen. The pressure

More information

Sectional Solutions Key

Sectional Solutions Key Sectional Solutions Key 1. For the equilibrium: 2SO 2 (g) + O 2 (g) 2SO 3 (g) + 188 kj, the number of moles of sulfur trioxide will increase if: a. the temperature of the system is increased (at constant

More information

3. Which of the following compounds is soluble? The solubility rules are listed on page 8.

3. Which of the following compounds is soluble? The solubility rules are listed on page 8. 1. Classify the following reaction. Sb 2 O 3 + 3 Fe 2 Sb + 3 FeO a) Combination reaction b) Decomposition reaction c) Neutralization reaction d) Single-replacement reaction e) Double-replacement reaction

More information

What type of solution that contains all of the

What type of solution that contains all of the What type of solution that contains all of the solute it can hold at a given temperature? Saturated Solution What type of solution that contains less solute than it is able to hold at a given temperature?

More information

Based on the kinetic molecular theory of gases, which one of the following statements is INCORRECT?

Based on the kinetic molecular theory of gases, which one of the following statements is INCORRECT? 1 Based on the kinetic molecular theory of gases, which one of the following statements is INCORRECT? A) The collisions between gas molecules are perfectly elastic. B) At absolute zero, the average kinetic

More information

Exam 4, Ch 14 and 15 December 7, Points

Exam 4, Ch 14 and 15 December 7, Points Chem 130 Name Exam 4, Ch 14 and 15 December 7, 2016 100 Points Please follow the instructions for each section of the exam. Show your work on all mathematical problems. Provide answers with the correct

More information

Ideal Gas & Gas Stoichiometry

Ideal Gas & Gas Stoichiometry Ideal Gas & Gas Stoichiometry Avogadro s Law V a number of moles (n) V = constant x n Constant temperature Constant pressure V 1 /n 1 = V 2 /n 2 Ammonia burns in oxygen to form nitric oxide (NO) and water

More information

Gas Laws. Bonding. Solutions M= moles solute Mass %= mass solute x 100. Acids and Bases. Thermochemistry q = mc T

Gas Laws. Bonding. Solutions M= moles solute Mass %= mass solute x 100. Acids and Bases. Thermochemistry q = mc T Name Period Teacher Practice Test: OTHS Academic Chemistry Spring Semester 2017 The exam will have 100 multiple choice questions (1 point each) Formula sheet (see below) and Periodic table will be provided

More information

CHEM 150 Exam 2. Name Multiple Choice Identify the letter of the choice that best completes the statement or answers the question.

CHEM 150 Exam 2. Name Multiple Choice Identify the letter of the choice that best completes the statement or answers the question. CHEM 150 Exam 2 Name Multiple Choice Identify the letter of the choice that best completes the statement or answers the question. 1. Formic acid, HCOOH, is what causes the sting of bee stings. What is

More information

CHEMpossible. 101 Exam 2 Review

CHEMpossible. 101 Exam 2 Review CHEMpossible 1. Circle each statement that applies to thermal energy and heat: a. Thermal energy is the average kinetic energy of its molecules due to their motion b. High thermal energy is reflected in

More information

Chemistry Final Exam: Practice Problems

Chemistry Final Exam: Practice Problems Chemistry Final Exam: Practice Problems 1. Key Vocabulary/Terms: atomic number element compound kinetic theory acid base salt vaporization condensation evaporation boiling sublimation energy level valence

More information

CHEMISTRY CP Name: Period:

CHEMISTRY CP Name: Period: CHEMISTRY CP Name: Period: CHEMISTRY SPRING FINAL REVIEW SHEET NOTE: Below are concepts that we have covered in class throughout the second semester. Questions are organized by chapter/concept to help

More information

Multiple Choice Identify the letter of the choice that best completes the statement or answers the question.

Multiple Choice Identify the letter of the choice that best completes the statement or answers the question. CP Chem Review 2 Matching Match each item with the correct statement below. a. activated complex d. activation energy b. reaction rate e. free energy c. inhibitor 1. the minimum energy colliding particles

More information

CHEMISTRY 110 Final EXAM Dec 17, 2012 FORM A

CHEMISTRY 110 Final EXAM Dec 17, 2012 FORM A CEMISTRY 110 Final EXAM Dec 17, 2012 FORM A 1. Given the following reaction which of the following statements is true? Fe(s) + CuCl 2 (aq)! Cu(s) + FeCl 2 (aq) A. Iron is oxidized and copper is reduced.

More information

Name. Practice Test 2 Chemistry 111

Name. Practice Test 2 Chemistry 111 Name Practice Test 2 Chemistry 111 1) In the aqueous reaction of K 2 SO 4 (aq) + Ba(NO 3 ) 2 (aq) BaSO 4 (s) + 2KNO 3 (aq), which ions are the spectator ions? A) Ba 2+ 2- and SO 4 B) Ba 2+ and K + C) Ba

More information

CHEMISTRY 12 UNIT II EQUILIBRIUM D Learning Goals

CHEMISTRY 12 UNIT II EQUILIBRIUM D Learning Goals CHEMISTRY 12 UNIT II EQUILIBRIUM D Learning Goals 1. Chemical equilibrium is said to by dynamic because a. The reaction proceeds quickly b. The mass of the reactants is decreasing c. The macroscopic properties

More information

Unit 7 Kinetics and Thermodynamics

Unit 7 Kinetics and Thermodynamics 17.1 The Flow of Energy Heat and Work Unit 7 Kinetics and Thermodynamics I. Energy Transformations A. Temperature 1. A measure of the average kinetic energy of the particles in a sample of matter B. Heat

More information

Questions 1-2 Consider the atoms of the following elements. Assume that the atoms are in the ground state. a. S b. Ca c. Ga d. Sb e.

Questions 1-2 Consider the atoms of the following elements. Assume that the atoms are in the ground state. a. S b. Ca c. Ga d. Sb e. AP Chemistry Fall Semester Practice Exam 5 MULTIPLE CHOICE PORTION: Write the letter for the correct answer to the following questions on the provided answer sheet. Each multiple choice question is worth

More information

L = 6.02 x mol Determine the number of particles and the amount of substance (in moles)

L = 6.02 x mol Determine the number of particles and the amount of substance (in moles) 1.1 The Mole 1.1.1 - Apply the mole concept to substances A mole is the name given to a certain quantity. It represents 6.02 x 10 23 particles. This number is also known as Avogadro's constant, symbolised

More information

Final Exam Review-Honors Name Period

Final Exam Review-Honors Name Period Final Exam Review-Honors Name Period This is not a fully comprehensive review packet. This packet is especially lacking practice of explanation type questions!!! You should study all previous review sheets

More information

BCIT Fall Chem Exam #2

BCIT Fall Chem Exam #2 BCI Fall 2016 Chem 3310 Exam #2 Name: Attempt all questions in this exam. Read each question carefully and give a complete answer in the space provided. Part marks given for wrong answers with partially

More information

General Chemistry I Final Exam 100 pts Fall 2010

General Chemistry I Final Exam 100 pts Fall 2010 General Chemistry I Final Exam 100 pts Fall 2010 Name This is a closed-book exam: the only reference materials you may use are a periodic table of the elements, a table of enthalpies of formation, and

More information

Chem 130 Name Exam 2 October 11, Points Part I: Complete all of problems 1-9

Chem 130 Name Exam 2 October 11, Points Part I: Complete all of problems 1-9 Chem 130 Name Exam October 11, 017 100 Points Please follow the instructions for each section of the exam. Show your work on all mathematical problems. Provide answers with the correct units and significant

More information

CHEMISTRY. Section II (Total time 95 minutes) Part A Time 55 minutes YOU MAY USE YOUR CALCULATOR FOR PART A.

CHEMISTRY. Section II (Total time 95 minutes) Part A Time 55 minutes YOU MAY USE YOUR CALCULATOR FOR PART A. CHEMISTRY Section II (Total time 95 minutes) Part A Time 55 minutes YOU MAY USE YOUR CALCULATOR FOR PART A. CLEARLY SHOW THE METHOD USED AND THE STEPS INVOLVED IN ARRIVING AT YOUR ANSWERS. It is to your

More information

The following gas laws describes an ideal gas, where

The following gas laws describes an ideal gas, where Alief ISD Chemistry STAAR Review Reporting Category 4: Gases and Thermochemistry C.9.A Describe and calculate the relations between volume, pressure, number of moles, and temperature for an ideal gas as

More information

EXAM III Nov. 1, 2018

EXAM III Nov. 1, 2018 EM 105 Dr. Lammi Name: EXAM III Nov. 1, 2018 You may work until 10:50 to complete this exam. Please show all work in the space provided or on the attached scratch page. Remember to report your final answers

More information

Higher Chemistry Principles to Production October Revision

Higher Chemistry Principles to Production October Revision igher Chemistry Principles to Production October Revision You should use your class notes, Evans2Chemweb and Scholar to help. Show your working for each question. Sections covered so far; Principles to

More information

CHAPTER 14: The Behavior of Gases

CHAPTER 14: The Behavior of Gases Name: CHAPTER 14: The Behavior of Gases Period: RELATIONSHIPS BETWEEN PRESSURE, VOLUME & TEMPERATURE OF A GAS Boyle s Law-Pressure and Volume Volume (ml) Pressure ( ) 60 50 40 30 20 10 Practice problem:

More information

EQUILIBRIUM GENERAL CONCEPTS

EQUILIBRIUM GENERAL CONCEPTS 017-11-09 WHEN THE REACTION IS IN EQUILIBRIUM EQUILIBRIUM GENERAL CONCEPTS The concentrations of all species remain constant over time, but both the forward and reverse reaction never cease When a system

More information

AP Chemistry Summer Review Assignment

AP Chemistry Summer Review Assignment Name: Period: Chem I Teacher/year: AP Chemistry Summer Review Assignment Due on the FIRST DAY OF SCHOOL! A. Chemical Foundations 1. The beakers shown below have different precisions. a. Label the amount

More information

UNIT 3 IB MATERIAL BONDING, MOLES & STOICHIOMETRY

UNIT 3 IB MATERIAL BONDING, MOLES & STOICHIOMETRY UNIT 3 IB MATERIAL Name: BONDING, MOLES & STOICHIOMETRY ESSENTIALS: Know, Understand, and Be Able To Apply the mole concept to substances. Determine the number of particles and the amount of substance

More information

15.1 The Concept of Equilibrium

15.1 The Concept of Equilibrium Lecture Presentation Chapter 15 Chemical Yonsei University 15.1 The Concept of N 2 O 4 (g) 2NO 2 (g) 2 Chemical equilibrium occurs when a reaction and its reverse reaction proceed at the same rate. The

More information

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

2. If the volume of a container holding a gas is reduced, what will happen to the presure within the container? 1. Which gas law states that the volume of a fixed mass of a gas is directly proportional to its Kelvin temperature if the pressure is kept constant? A. Boyle s law B. Charles law C. Dalton s law D. Gay-Lussac

More information

First Law of Thermodynamics: energy cannot be created or destroyed.

First Law of Thermodynamics: energy cannot be created or destroyed. 1 CHEMICAL THERMODYNAMICS ANSWERS energy = anything that has the capacity to do work work = force acting over a distance Energy (E) = Work = Force x Distance First Law of Thermodynamics: energy cannot

More information

REVIEW OF BASIC CHEMISTRY ANSWER KEY

REVIEW OF BASIC CHEMISTRY ANSWER KEY REVIEW OF BASIC CHEMISTRY ANSWER KEY 1. Name the following elements. Spelling counts: 2. Write the symbols for the following elements. H hydrogen sodium Na S sulphur phosphorus P Cl chlorine fluorine F

More information

Since the coefficients are only determined up to a multiplicative constant, set c 1 1 and solve for the coefficients: c 1 1 c c 3 1

Since the coefficients are only determined up to a multiplicative constant, set c 1 1 and solve for the coefficients: c 1 1 c c 3 1 In[1]:= dipole moment of S4 Input interpretation: sulfur tetrafluoride dipole moment Result:.632 D (debyes) Unit conversions: 2.18 1-18 pc m (picocoulomb meters) 2.18 1-21 nc m (nanocoulomb meters) 2.18

More information

Electrochemistry: Oxidation numbers. EIT Review F2006 Dr. J.A. Mack. Electrochemistry: Oxidation numbers

Electrochemistry: Oxidation numbers. EIT Review F2006 Dr. J.A. Mack.  Electrochemistry: Oxidation numbers EIT Review F2006 Dr. J.A. Mack Electrochemistry: Oxidation numbers In the compound potassium bromate (KBrO 3 ), the oxidation number of bromine (Br) is? www.csus.edu/indiv/m/mackj/ Part 2 38 39 +1 +2 Oxidation

More information

Energy Intro. How do we access chemical energy? Why do combustion reactions give off energy?

Energy Intro. How do we access chemical energy? Why do combustion reactions give off energy? Energy Intro How do we access chemical energy? Why do combustion reactions give off energy? Order wood, Coal, Natural Gas (methane), gasoline (C 8 H 18 ), and ethanol in terms of energy content (per gram)

More information

ANSWERS AND EXPLANATIONS TO PRACTICE EXAM I FREE RESPONSE QUESTIONS

ANSWERS AND EXPLANATIONS TO PRACTICE EXAM I FREE RESPONSE QUESTIONS ANSWERS AND EXPLANATIONS TO PRACTICE EXAM I REE RESPONSE QUESTIONS. Mandatory Calculation - Equilibrium 0 points total NOCl (g) NO (g) + Cl (g) (a) (i) Initial pressure (atm) before decomposition: Given

More information

WYSE Academic Challenge 2004 Sectional Chemistry Solution Set

WYSE Academic Challenge 2004 Sectional Chemistry Solution Set WYSE Academic Challenge 2004 Sectional Chemistry Solution Set 1. Answer: d. Assume 100.0 g of the compound. Thus, we have 40.00 g of carbon, or 40.00/12.01 = 3.33 mol C. We have 6.71 g of hydrogen, or

More information

Properties of Gases. Properties of Gases. Pressure. Three phases of matter. Definite shape and volume. solid. Definite volume, shape of container

Properties of Gases. Properties of Gases. Pressure. Three phases of matter. Definite shape and volume. solid. Definite volume, shape of container Properties of Gases Properties of Gases Three phases of matter solid Definite shape and volume liquid Definite volume, shape of container gas Shape and volume of container Properties of Gases A gas is

More information

The reactions we have dealt with so far in chemistry are considered irreversible.

The reactions we have dealt with so far in chemistry are considered irreversible. 1. Equilibrium Students: model static and dynamic equilibrium and analyse the differences between open and closed systems investigate the relationship between collision theory and reaction rate in order

More information

General Physical Science. Chemical and Physical Properties. Chemical and Physical Properties. Chapter 13 Chemical Reactions. Physical properties

General Physical Science. Chemical and Physical Properties. Chemical and Physical Properties. Chapter 13 Chemical Reactions. Physical properties General Physical Science Chapter 13 Chemical Reactions Chemical and Physical Properties Physical properties Observations about a substance changes that do not involve a change in the arrangement of the

More information

Gummy Bear Demonstration:

Gummy Bear Demonstration: Name: Unit 8: Chemical Kinetics Date: Regents Chemistry Aim: _ Do Now: a) Using your glossary, define chemical kinetics: b) Sort the phrases on the SmartBoard into the two columns below. Endothermic Rxns

More information

Chemistry 121 Chapters 7& 8 Practice Test Multiple Choice Identify the choice that best completes the statement or answers the question.

Chemistry 121 Chapters 7& 8 Practice Test Multiple Choice Identify the choice that best completes the statement or answers the question. Chemistry 121 Chapters 7& 8 Practice Test Multiple Choice Identify the choice that best completes the statement or answers the question. 1. A sample of carbon dioxide occupies 22.4 L at STP. Which of the

More information

Accelerated Chemistry Semester 2 Review Sheet

Accelerated Chemistry Semester 2 Review Sheet Accelerated Chemistry Semester 2 Review Sheet The semester test will be given in two parts. The first part is a performance assessment and will be given the day before the semester test. This will include

More information

Chapter 11. Molecular Composition of Gases

Chapter 11. Molecular Composition of Gases Chapter 11 Molecular Composition of Gases PART 1 Volume-Mass Relationships of Gases Avogadro s Law Equal volumes of gases at the same temperature and pressure contain equal numbers of molecules. Recall

More information

General Chemistry I. Dr. PHAN TẠI HUÂN Faculty of Food Science and Technology Nong Lam University. Module 4: Chemical Thermodynamics

General Chemistry I. Dr. PHAN TẠI HUÂN Faculty of Food Science and Technology Nong Lam University. Module 4: Chemical Thermodynamics General Chemistry I Dr. PHAN TẠI HUÂN Faculty of Food Science and Technology Nong Lam University Module 4: Chemical Thermodynamics Zeroth Law of Thermodynamics. First Law of Thermodynamics (state quantities:

More information

Notes: Balancing Chemical Equations

Notes: Balancing Chemical Equations Notes: Balancing Chemical Equations Effects of chemical reactions: Chemical reactions rearrange atoms in the reactants to form new products. The identities and properties of the products are completely

More information

CH101 Fall 2018 Discussion #7 Chapter 6 TF s name: Discussion Time:

CH101 Fall 2018 Discussion #7 Chapter 6 TF s name: Discussion Time: Name: CH101 Fall 2018 Discussion #7 Chapter 6 TF s name: Discussion Time: Things you should know when you leave Discussion today: Dissolving ionic, polar, and non-polar compounds in water Mahaffy, 2e section

More information

CHAPTER 4 TYPES OF CHEMICAL EQUATIONS AND SOLUTION STOICHIOMETRY

CHAPTER 4 TYPES OF CHEMICAL EQUATIONS AND SOLUTION STOICHIOMETRY CHAPTER 4 TYPES OF CHEMICAL EQUATIONS AND SOLUTION STOICHIOMETRY Water, the common solvent Solution is a homogeneous mixture Solvent is the substance that does the dissolving Solute is the substance that

More information

Chem 1210 Final Spring points Dr. Luther Giddings

Chem 1210 Final Spring points Dr. Luther Giddings Chem 1210 Final Spring 2002 150 points Dr. Luther Giddings Name Instructions: This is a closed book, closed notebook test. You may not discuss this exam with anyone, either during or after the exam, until

More information

Practice Questions Placement Exam for Entry into Chemistry 120

Practice Questions Placement Exam for Entry into Chemistry 120 Practice Questions Placement Exam for Entry into Chemistry 120 Potentially Useful Information Avogadro's number = 6.0221420 10 23 h = 6.6260688 10 34 J s c = 2.9979246 10 8 m/s 1amu = 1.6605387 10 27 kg

More information

NChO 2008 A N N O T A T E D A N S W E R S

NChO 2008 A N N O T A T E D A N S W E R S NChO 2008 A N N O T A T E D A N S W E R S 1. A Only two elements are liquid at room temperature and pressure (25 C & 1 atm), Br 2 & Hg. 2. D PbI 2 (s) is yellow. (Memorize this tidbit.) Color often involves

More information