CHEMISTRY 202 Hour Exam I. Dr. D. DeCoste T.A.

Size: px
Start display at page:

Download "CHEMISTRY 202 Hour Exam I. Dr. D. DeCoste T.A."

Transcription

1 CHEMISTRY 0 Hour Exam I September, 016 Dr. D. DeCoste Name Signature T.A. This exam contains 3 questions on 11 numbered pages. Check now to make sure you have a complete exam. You have two hours to complete the exam. Determine the best answer to the first 0 questions and enter these on the special answer sheet. Also, circle your responses in this exam booklet. Show all of your work and provide complete answers to questions 1, and (60 pts.) 1 (0 pts.) (0 pts) 3 (0 pts.) Total (10 pts) Useful Information: Always assume ideal behavior for gases (unless explicitly told otherwise). PV = nrt R = Latm/molK = J/Kmol K = C + 73 N A = 6.0 x 10 3 υ rms = 3RT M λ = 1 ( N / V )( πd ) Z A = A V N RT πm Z = 4 V N d πrt M x = - b ± b - 4ac a Solubility Rules: 1. Most nitrate salts are soluble.. Most salts of sodium, potassium, and ammonium cations are soluble. 3. Most chloride salts are soluble. Exceptions: silver, lead(ii), and mercury(i) chloride. 4. Most sulfate salts are soluble. Exceptions: calcium, barium, and lead (II) sulfate. 5. Most hydroxide salts can be considered insoluble. Soluble ones: sodium, potassium, and calcium hydroxide. 6. Consider sulfide, carbonate, and phosphate salts to be insoluble.

2 Hour Exam I Page No Caffeine is a stimulant most commonly found in coffee and is 5.19% hydrogen by mass. The molecular formula of caffeine is C x H 10 N 4 O. Determine the value of x. a) b) 4 c) 8 d) 10 e) 1. An iron (Fe) bar sits outside and rusts, forming iron(iii) oxide. Once all of the iron has rusted, the mass is 6.8 g. Determine the original mass of the iron bar. a).0 g b) 3.38 g c) 4.01 g d) 4.39 g e) 8.78 g 3. When copper (Cu) metal is dropped into an aqueous AgNO 3 solution, silver (Ag) metal is produced and the solution turns blue from the Cu + ions in solution. Determine the mass of silver that can be produced from g of copper in an excess of silver nitrate solution. a) g b) g c) g d) g e) 67.9 g 4. Consider a reaction in which two reactants make one product (for example, consider the unbalanced A + B C). You know the following:.0 moles of A (with an excess of B) can make a maximum of.0 moles C 5.0 moles of B (with an excess of A) can make a maximum of 4.0 moles C If you react 10.0 moles of A and 10.0 moles of B, what is the maximum amount of C that can be produced? a) 8.0 mol b) 10.0 mol c) 1.0 mol d) 18.0 mol e) 0.0 mol 5. Consider mixing an aqueous solution of barium nitrate and an aqueous solution of potassium phosphate. For how many of the following cases is the concentration of the barium ion essentially equal to zero after the reaction is complete? That is, we are assuming the reaction goes to completion and does not reach equilibrium. Reacting ml of M barium nitrate with ml of M potassium phosphate. Reacting ml of M barium nitrate with ml of M potassium phosphate. Reacting 00.0 ml of M barium nitrate with ml of M potassium phosphate. Reacting 00.0 ml of M barium nitrate with ml of M potassium phosphate. a) 0 b) 1 c) d) 3 e) 4 6. You have a table sugar solution (sucrose, C 1 H O 11 ) sitting in an open beaker. After several days you test the solution and find that it has a concentration 33.3% higher due to evaporation. What percentage of the water must have evaporated from the sugar solution? a) 5.0% b) 33.3% c) 66.7% d) 75.0% e) The concentration of the solution will not change due to evaporation.

3 Hour Exam I Page No. 7. Consider the reaction between equal volumes of lead(ii) nitrate and calcium chloride in which both solutions have the same concentration in terms of molarity. How many of the following statements is/are false after the reaction is complete? Note: assume the reaction goes to completion (that is, does not reach equilibrium). The concentration of the nitrate ion is the same as the initial concentration of lead(ii) nitrate. The lead(ii) ion has all precipitated out of solution. The concentration of the chloride ion is equal to that of the nitrate ion. The only ions left in solution are the nitrate ions and the calcium ions a) 0 b) 1 c) d) 3 e) 4 8. A 4.60 g sample of cobalt (Co) metal is reacted with ml of 1.00 M HCl(aq) to produce hydrogen gas and cobalt chloride. There is no excess reactant. Determine the formula of the cobalt chloride produced in the reaction. a) CoCl b) CoCl c) Co Cl 3 d) CoCl 3 e) CoCl 4 9. A classic chemistry lab is to determine the molar mass of a volatile (easily evaporated) liquid by vaporizing the liquid to a known pressure, temperature, and volume. Suppose you vaporize a liquid at 1.00 atm and C in a 50.0-mL flask. The mass of the vapor is found to be g. Which of the following could be the identity of the liquid? a) CHCl 3 b) CH 3 OH c) C 6 H 14 d) CH Cl e) C H 6 O 10. For metals that form a + charge in an ionic compound, the general equation for such a metal reacting with hydrochloric acid is M(s) + HCl(aq) MCl (aq) + H (g) 4.4 g of a metal is reacted completely with an excess of HCl and all of the hydrogen gas produced is collected in a balloon at 5 C and 1.00 atm. The volume of the balloon is measured and found to be 9.1 L. Identify the metal that was added to the HCl. a) Ni b) Mn c) Ca d) Mg e) Zn , 1. Consider two samples He in separate container of equal volume and at equal pressure. Sample 1 has a Kelvin temperature that is 4 times that of Sample. Determine the ratio of: 11. [moles (n) in Sample 1] : [moles (n) in Sample ]. a) 1:1 b) :1 c) 1: d) 1:4 e) 4:1 1. [collision frequency (Z A ) in Sample 1] : [collision frequency (Z A ) in Sample ]. a) 1:1 b) :1 c) 1: d) 1:4 e) 4:1

4 Hour Exam I Page No. 3 13, 14. You have equal masses of neon gas in the left side, and helium gas in the right side, of a twobulb container connected by a valve as shown below. Initially the valve is closed. Ne He 5.0 L 1.0 L 13. After the valve is opened, what is true about the relative partial pressures of helium and neon? Assume constant temperature. a) The partial pressures of helium and neon are equal. b) The partial pressure of neon is 5.0 times as great as the partial pressure of helium. c) The partial pressure of neon is 5.0 times as great as the partial pressure of helium. d) The partial pressure of helium is 5.0 times as great as the partial pressure of neon. e) The partial pressure of helium is 5.0 times as great as the partial pressure of neon. 14. After the valve is opened, how does the final total pressure compare to the initial pressure of helium? Assume constant temperature. a) P (final) = (6/5)P (He initial) b) P (final) = (1/5)P (He initial) c) P (final) = (1/6)P (He initial) d) P (final) = (5/6)P (He initial) e) We cannot determine this without knowing the amounts of neon and helium present , 16. Indicate which of the graphs below best represents each plot described in questions 15 and 16. Note: the graphs may be used once, more than once, or not at all. a) b) c) d) e) 15. Density (y) vs. T (K) (x) for 1 mole of an ideal gas in a rigid steel container. b 16. Pressure (y) vs. molar mass (x) for 1 mole of a given volume of a series of ideal gases at the same temperature. b

5 Hour Exam I Page No How many of the following changes will always result in shifting the equilibrium position of a gaseous chemical system? I. Changing the pressure of the system. II. Changing the volume of the system. III. Changing the temperature of the system. IV. Changing the total number of moles of gas in the system. a) 1 b) c) 3 d) Consider the system represented by H (g) + O (g) H O(g) at equilibrium. How many of the following changes would shift the equilibrium position to the left? I. Addition of water vapor at constant volume and temperature. II. Decreasing the volume at constant temperature. III. Decreasing the temperature of the system at constant volume. IV. Addition of helium gas at constant volume and temperature. a) 0 b) 1 c) d) 3 e) , 0. You have a sample of NOBr(g) in an otherwise empty, closed flask at atm where it decomposed at constant temperature according to the following equation: NOBr(g) NO(g) + Br (g) At equilibrium, 60.0% of the original NOBr(g) has decomposed. 19. Determine the total pressure in the flask at equilibrium. a) 1.00 atm b) 1.15 atm c) 1.30 atm d) 1.50 atm e) 1.75 atm 0. Determine the value of the equilibrium constant, K p. a) b) c) 0.19 d) e) 0.675

CHEMISTRY 202 Hour Exam I. Dr. D. DeCoste T.A.

CHEMISTRY 202 Hour Exam I. Dr. D. DeCoste T.A. CHEMISTRY 202 Hour Exam I September 22, 2016 Dr. D. DeCoste Name Signature T.A. This exam contains 23 questions on 11 numbered pages. Check now to make sure you have a complete exam. You have two hours

More information

CHEMISTRY 202 Practice Hour Exam I. Dr. D. DeCoste T.A.

CHEMISTRY 202 Practice Hour Exam I. Dr. D. DeCoste T.A. CHEMISTRY 202 Practice Hour Exam I Fall 2016 Dr. D. DeCoste Name Signature T.A. This exam contains 23 questions on 9 numbered pages. Check now to make sure you have a complete exam. You have two hours

More information

CHEMISTRY 202 Hour Exam I (Multiple Choice Section) Dr. D. DeCoste T.A.

CHEMISTRY 202 Hour Exam I (Multiple Choice Section) Dr. D. DeCoste T.A. CHEMISTRY 0 Hour Exam I (Multiple Choice Section) September 8, 017 Dr. D. DeCoste Name Signature T.A. This exam contains 0 questions on 4 numbered pages. Check now to make sure you have a complete exam.

More information

KEEP THIS SECTION!!!!!!!!!

KEEP THIS SECTION!!!!!!!!! KEEP THIS SECTION!!!!!!!!! CHEMISTRY 0 Hour Exam I (Multiple Choice Section) September 7, 018 Dr. D. DeCoste Name Signature T.A. This exam contains 0 questions on 4 numbered pages. Check now to make sure

More information

CHEMISTRY 202 Hour Exam I. Dr. D. DeCoste T.A.

CHEMISTRY 202 Hour Exam I. Dr. D. DeCoste T.A. CHEMISTRY 202 Hour Exam I September 28, 2017 Dr. D. DeCoste Name Signature T.A. This exam contains 23 questions on 10 numbered pages. Check now to make sure you have a complete exam. You have two hours

More information

CHEMISTRY 202 Hour Exam I. Dr. D. DeCoste T.A.

CHEMISTRY 202 Hour Exam I. Dr. D. DeCoste T.A. CHEMISTRY 0 Hour Exam I September 5, 014 Dr. D. DeCoste Name Signature T.A. This exam contains 33 questions on 10 numbered pages. Check now to make sure you have a complete exam. You have two hours to

More information

"It s not that I m so smart, it s just that I stay with problems longer." --Albert Einstein--

It s not that I m so smart, it s just that I stay with problems longer. --Albert Einstein-- CHEMISTRY 101 Hour Exam II October 29, 2013 Adams/Lindquist Name Signature Section "It s not that I m so smart, it s just that I stay with problems longer." --Albert Einstein-- This exam contains 17 questions

More information

CHEMISTRY 101 Hour Exam II. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts)

CHEMISTRY 101 Hour Exam II. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts) CHEMISTRY 101 Hour Exam II March 16, 2017 Dr. D. DeCoste Name Signature T.A. This exam contains 17 questions on 5 numbered pages. Check now to make sure you have a complete exam. You have one hour and

More information

"We are what we repeatedly do. Excellence, therefore, is not an act but a habit." --Aristotle--

We are what we repeatedly do. Excellence, therefore, is not an act but a habit. --Aristotle-- CHEMISTRY 101 Hour Exam II October 25, 2016 Adams/Huynh Name Signature Section "We are what we repeatedly do. Excellence, therefore, is not an act but a habit." --Aristotle-- This exam contains 17 questions

More information

CHEMISTRY 102B Practice Hour Exam I. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts)

CHEMISTRY 102B Practice Hour Exam I. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts) CHEMISTRY 102B Practice Hour Exam I Spring 2016 Dr. D. DeCoste Name Signature T.A. This exam contains 17 questions on 5 numbered pages. Check now to make sure you have a complete exam. You have one hour

More information

CHEMISTRY 101 Hour Exam II. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts)

CHEMISTRY 101 Hour Exam II. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts) CHEMISTRY 1 Hour Exam II March 16, 017 Dr. D. DeCoste Name Signature T.A. This exam contains 17 questions on 5 numbered pages. Check now to make sure you have a complete exam. You have one hour and thirty

More information

Research tells us fourteen out of any ten individuals like chocolate. Happy Halloween!

Research tells us fourteen out of any ten individuals like chocolate. Happy Halloween! CHEMISTRY 101 Hour Exam II October 31, 2006 Adams/Le Name KEY Signature T.A./Section Research tells us fourteen out of any ten individuals like chocolate. Happy Halloween! This exam contains 17 questions

More information

CHEMISTRY 101 Hour Exam II. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts)

CHEMISTRY 101 Hour Exam II. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts) CHEMISTRY 101 Hour Exam II March 15, 2018 Dr. D. DeCoste Name Signature T.A. This exam contains 17 questions on 6 numbered pages. Check now to make sure you have a complete exam. You have one hour and

More information

"No matter what costume you wear, when you start eating Halloween candy, you will be a goblin. - Unknown

No matter what costume you wear, when you start eating Halloween candy, you will be a goblin. - Unknown CHEMISTRY 101 Hour Exam II October 31, 2017 Andino/McCarren Name Signature Section "No matter what costume you wear, when you start eating Halloween candy, you will be a goblin. - Unknown This exam contains

More information

CHEMISTRY 101 Hour Exam I. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts)

CHEMISTRY 101 Hour Exam I. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts) CHEMISTRY 101 Hour Exam I February 9, 2017 Dr. D. DeCoste Name Signature T.A. This exam contains 17 questions on 6 numbered pages. Check now to make sure you have a complete exam. You have one hour and

More information

CHEMISTRY 101 Hour Exam I. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts)

CHEMISTRY 101 Hour Exam I. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts) CHEMISTRY 101 Hour Exam I February 9, 2017 Dr. D. DeCoste Name Signature T.A. This exam contains 17 questions on 6 numbered pages. Check now to make sure you have a complete exam. You have one hour and

More information

CHEMISTRY 102B Hour Exam II. Dr. D. DeCoste T.A.

CHEMISTRY 102B Hour Exam II. Dr. D. DeCoste T.A. CHEMISTRY 10B Hour Exam II March 19, 015 Dr. D. DeCoste Name Signature T.A. This exam contains questions on 9 numbered pages. Check now to make sure you have a complete exam. You have one hour and thirty

More information

AP Chemistry Semester 1 Practice Problems

AP Chemistry Semester 1 Practice Problems AP Chemistry Semester 1 Practice Problems 1. Adipic Acid contains 49.32% C, 43.84% O, and 6.85% H by mass. What is the empirical formula? a) C 3 H 5 O 2 b) C 3 H 3 O 4 c) C 2 HO 3 d) C 2 H 5 O 4 e) C 3

More information

Chem 101 Practice Exam 3 Fall 2012 You will have a Solubility Table and Periodic Table

Chem 101 Practice Exam 3 Fall 2012 You will have a Solubility Table and Periodic Table Chem 101 Practice Exam Fall 01 You will have a Solubility Table and Periodic Table 1. A 1.6-mol sample of KClO was decomposed according to the equation KClO (s) KCl(s) O (g) How many moles of O are formed

More information

Review Questions (Exam II)

Review Questions (Exam II) Announcements Exam tonight, 7-8:15pm (locations posted on website) Conflict Exam, 5:15-6:30pm (114 Transportation Bldg) No lab this week! Start new material on Thursday (read chapter 10!) Review Questions

More information

CHEMISTRY 102A Spring 2012 Hour Exam II. 1. My answers for this Chemistry 102 exam should be graded with the answer sheet associated with:

CHEMISTRY 102A Spring 2012 Hour Exam II. 1. My answers for this Chemistry 102 exam should be graded with the answer sheet associated with: . My answers for this Chemistry 0 exam should be graded with the answer sheet associated with: a) Form A b) Form B c) Form C d) Form D e) Form E. A sample of LSD (D-lysergic acid diethylamide, C 4 H 30

More information

What is one of the spectator ions (with correct coefficient)? A)

What is one of the spectator ions (with correct coefficient)? A) Chem 101 Exam Fall 01 Section 001 1. Based on the solubility rules Mg (PO 4 ) is A) soluble B) insoluble. An aqueous solution of potassium sulfate is allowed to react with an aqueous solution of What is

More information

Gravimetric Analysis (Analysis by Mass)

Gravimetric Analysis (Analysis by Mass) Week 2 Measuring water content Gravimetric Analysis (Analysis by Mass Water is a component in many consumer products It may occur naturally or may be added in manufacturing Water content can reveal the

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

5. [7 points] What is the mass of gallons (a fifth) of pure ethanol (density = g/cm 3 )? [1 gallon = Liters]

5. [7 points] What is the mass of gallons (a fifth) of pure ethanol (density = g/cm 3 )? [1 gallon = Liters] 1 of 6 10/20/2009 3:55 AM Avogadro s Number, N A = 6.022 10 23 1. [7 points] Given the following mathematical expression: (15.11115.0)/(2.154 10 3 ) How many significant figures should the answer contain?

More information

(50 pts.) 26. (24 pts.) 27. (8 pts.) 28. (18 pts.) TOTAL (100 points)

(50 pts.) 26. (24 pts.) 27. (8 pts.) 28. (18 pts.) TOTAL (100 points) Moorpark College Chemistry 11 Spring 2011 Instructor: Professor Torres Examination #2: Section Two March 12, 2011 Name: (print) Name: (sign) Directions: Make sure your examination contains ELEVEN total

More information

4 CO O 2. , how many moles of KCl will be produced? Use the unbalanced equation below: PbCl 2. PbSO 4

4 CO O 2. , how many moles of KCl will be produced? Use the unbalanced equation below: PbCl 2. PbSO 4 Honors Chemistry Practice Final 2017 KEY 1. Acetylene gas, C 2, is used in welding because it generates an extremely hot flame when combusted with oxygen. How many moles of oxygen are required to react

More information

CHEMISTRY 102A/E Hour Exam I. T. Hummel SECTION

CHEMISTRY 102A/E Hour Exam I. T. Hummel SECTION CHEMISTRY 10A/E September 3, 010 T. Hummel NAME SIGNATURE SECTION SAMPLE This exam is made up of an answer sheet, two cover sheets and 7 numbered pages. Below are instructions for coding the answer sheet.

More information

CHAPTER 4 TYPES OF CHEMICAL REACTIONS & SOLUTION STOICHIOMETRY

CHAPTER 4 TYPES OF CHEMICAL REACTIONS & SOLUTION STOICHIOMETRY Advanced Chemistry Name Hour Advanced Chemistry Approximate Timeline Students are expected to keep up with class work when absent. CHAPTER 4 TYPES OF CHEMICAL REACTIONS & SOLUTION STOICHIOMETRY Day Plans

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

Unit IV: Chemical Equations & Stoichiometry

Unit IV: Chemical Equations & Stoichiometry Unit IV: Chemical Equations & Stoichiometry A. The chemical equation B. Types of chemical reactions A. Activity series of metals B. Solubility rules C. Rules for writing and balancing equations D. Calculations

More information

Chapter 4. Types of Chemical Reactions and Solution Stoichiometry

Chapter 4. Types of Chemical Reactions and Solution Stoichiometry Chapter 4 Types of Chemical Reactions and Solution Stoichiometry Chapter 4 Table of Contents 4.1 Water, the Common Solvent 4.2 The Nature of Aqueous Solutions: Strong and Weak Electrolytes 4.3 The Composition

More information

Chem 42 Final Review Sheet Mr. J. Fassler Spring 2018

Chem 42 Final Review Sheet Mr. J. Fassler Spring 2018 Chem 42 Final Review Sheet Mr. J. Fassler Spring 2018 These problems are given to help you review concepts you may have forgotten. Old tests, quizzes and review sheets are also important in studying. Chapter

More information

M = Molarity = mol solute L solution. PV = nrt % yield = actual yield x 100 theoretical yield. PM=dRT where d=density, M=molar mass

M = Molarity = mol solute L solution. PV = nrt % yield = actual yield x 100 theoretical yield. PM=dRT where d=density, M=molar mass Solubility Rules: 1. Most nitrate salts are soluble. 2. Most salts of alkali metals and ammonium cations are soluble. 3. Most chloride, bromide and iodide salts are soluble. Exceptions: salts containing

More information

CHEM 1413 Chapter 4 Homework Questions TEXTBOOK HOMEWORK

CHEM 1413 Chapter 4 Homework Questions TEXTBOOK HOMEWORK CHEM 1413 Chapter 4 Homework Questions TEXTBOOK HOMEWORK Chapter 3 3.68 Calculate each of the following quantities: (a) Mass (g) of solute in 185.8 ml of 0.267 M calcium acetate (b) Molarity of 500. ml

More information

CHM1045 Exam 2 Chapters 3, 4, & 10

CHM1045 Exam 2 Chapters 3, 4, & 10 1. Upon analysis, a compound is found to contain 22.8% sodium, 21.8% boron, and 55.4% oxygen. What is its empirical formula? a. NaBO b. NaB 2 O 5 c. Na 2 B 4 O 7 d. Na 3 BO 4 e. None of the above. 2. The

More information

Chapter 6. Chemical Reactions. Sodium reacts violently with bromine to form sodium bromide.

Chapter 6. Chemical Reactions. Sodium reacts violently with bromine to form sodium bromide. Chapter 6 Chemical Reactions Sodium reacts violently with bromine to form sodium bromide. Evidence of Chemical Reactions Chemical Equations Reactants Products Reactant(s): Substance(s) present before the

More information

Reactions in aqueous solutions Redox reactions

Reactions in aqueous solutions Redox reactions Reactions in aqueous solutions Redox reactions Redox reactions In precipitation reactions, cations and anions come together to form an insoluble ionic compound. In neutralization reactions, H + ions and

More information

Unit Two Worksheet WS DC U2

Unit Two Worksheet WS DC U2 Unit Two Worksheet WS DC U2 Name Period Short Answer [Writing]. Write skeleton equations representing the following reactions and then balance them. Then identify the reaction type. Include all needed

More information

Chapter 4. Aqueous Reactions and Solution Stoichiometry

Chapter 4. Aqueous Reactions and Solution Stoichiometry Sample Exercise 4.1 (p. 127) The diagram below represents an aqueous solution of one of the following compounds: MgCl 2, KCl, or K 2 SO 4. Which solution does it best represent? Practice Exercise 1 (4.1)

More information

Chem 1A Dr. White Fall Handout 4

Chem 1A Dr. White Fall Handout 4 Chem 1A Dr. White Fall 2014 1 Handout 4 4.4 Types of Chemical Reactions (Overview) A. Non-Redox Rxns B. Oxidation-Reduction (Redox) reactions 4.6. Describing Chemical Reactions in Solution A. Molecular

More information

Moorpark College Chemistry 11 Fall 2011 Instructor: Professor Gopal. Examination #2: Section Two October 17, Name: (print)

Moorpark College Chemistry 11 Fall 2011 Instructor: Professor Gopal. Examination #2: Section Two October 17, Name: (print) Moorpark College Chemistry 11 Fall 2011 Instructor: Professor Gopal Examination #2: Section Two October 17, 2011 Name: (print) Directions: Make sure your examination contains ELEVEN total pages (including

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

CHEM 60 Spring 2016 Exam 2 Ch 5-8, 100 points total.

CHEM 60 Spring 2016 Exam 2 Ch 5-8, 100 points total. Name Exam No. F CHEM 60 Spring 2016 Exam 2 Ch 5-8, 100 points total. Multiple Choice. (20 questions, 3 points each = 60 points total) Mark the letter on the scantron form corresponding to the one best

More information

Success means having the courage, the determination, and the will to become the person you believe you were meant to be.

Success means having the courage, the determination, and the will to become the person you believe you were meant to be. CHEMISTRY 101 Hour Exam III December 7, 2006 Adams/Le Name KEY Signature T.A./Section Success means having the courage, the determination, and the will to become the person you believe you were meant to

More information

Exam 1, Ch October 12, Points

Exam 1, Ch October 12, Points Chem 130 Name Exam 1, Ch 46.7 October 12, 2018 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

More information

2. Relative molecular mass, M r - The relative molecular mass of a molecule is the average mass of the one molecule when compared with

2. Relative molecular mass, M r - The relative molecular mass of a molecule is the average mass of the one molecule when compared with Chapter 3: Chemical Formulae and Equations 1. Relative atomic mass, A r - The relative atomic mass of an element is the average mass of one atom of an element when compared with mass of an atom of carbon-12

More information

Chemistry 104 Final Exam Content Evaluation and Preparation for General Chemistry I Material

Chemistry 104 Final Exam Content Evaluation and Preparation for General Chemistry I Material Chemistry 104 Final Exam Content Evaluation and Preparation for General Chemistry I Material What is 25 mph in mm s 1? Unit conversions What is 1025 K in o F? Which is larger 1 ft 3 or 0.1 m 3? What is

More information

AP Chemistry Review Packet # form B. How many grams of water are present in 1.00 mol of copper(ii) sulfate pentahydrate?

AP Chemistry Review Packet # form B. How many grams of water are present in 1.00 mol of copper(ii) sulfate pentahydrate? AP Chemistry Review Packet #4 Warmup: Reaction Prediction 2010 form B (a) Solid copper(ii) sulfate pentahydrate is gently heated. How many grams of water are present in 1.00 mol of copper(ii) sulfate pentahydrate?

More information

Reactions in Aqueous Solutions

Reactions in Aqueous Solutions Copyright 2004 by houghton Mifflin Company. Reactions in Aqueous Solutions Chapter 7 All rights reserved. 1 7.1 Predicting if a Rxn Will Occur When chemicals are mixed and one of these driving forces can

More information

Chemical Reactions and Equations

Chemical Reactions and Equations Chemical Reactions and Equations 5-1 5.1 What is a Chemical Reaction? A chemical reaction is a chemical change. A chemical reaction occurs when one or more substances is converted into one or more new

More information

CHE 105 EXAMINATION II March 11, 2010 University of Kentucky Department of Chemistry

CHE 105 EXAMINATION II March 11, 2010 University of Kentucky Department of Chemistry CHE 105 EXAMINATION II March 11, 2010 University of Kentucky Department of Chemistry READ THESE DIRECTIONS CAREFULLY BEFORE STARTING THE EXAMINATION! It is extremely important that you fill in the answer

More information

Identify the reaction type, predict the products, and balance the equations. If it is a special decomposition or synthesis, identify which kind.

Identify the reaction type, predict the products, and balance the equations. If it is a special decomposition or synthesis, identify which kind. Identify the reaction type, predict the products, and balance the equations. If it is a special decomposition or synthesis, identify which kind. 1. calcium + oxygen 2. cupric carbonate 3. aluminum + hydrochloric

More information

Chapter 4 Types of Chemical Reaction and Solution Stoichiometry

Chapter 4 Types of Chemical Reaction and Solution Stoichiometry Chapter 4 Types of Chemical Reaction and Solution Stoichiometry Water, the Common Solvent One of the most important substances on Earth. Can dissolve many different substances. A polar molecule because

More information

Announcements. Please come to the front of the classroom and pick up a Solution Problems worksheet before class starts!

Announcements. Please come to the front of the classroom and pick up a Solution Problems worksheet before class starts! Announcements Please come to the front of the classroom and pick up a Solution Problems worksheet before class starts! Announcements 1. Mid-term grades will be posted soon (just used scaled exam 1 score

More information

TYPES OF CHEMICAL REACTIONS

TYPES OF CHEMICAL REACTIONS TYPES OF CHEMICAL REACTIONS Precipitation Reactions Compounds Soluble Ionic Compounds 1. Group 1A cations and NH 4 + 2. Nitrates (NO 3 ) Acetates (CH 3 COO ) Chlorates (ClO 3 ) Perchlorates (ClO 4 ) Solubility

More information

Name AP Chemistry September 30, 2013

Name AP Chemistry September 30, 2013 Name AP Chemistry September 30, 2013 AP Chemistry Exam Part I: 40 Questions, 40 minutes, Multiple Choice, No Calculator Allowed Bubble the correct answer on the blue side of your scantron for each of the

More information

Lab Day and Time: Instructions. 1. Do not open the exam until you are told to start. Page # Points possible Points awarded

Lab Day and Time: Instructions. 1. Do not open the exam until you are told to start. Page # Points possible Points awarded Name: Lab Day and Time: Instructions 1. Do not open the exam until you are told to start. 2. This exam is closed note and closed book. You are not allowed to use any outside material while taking this

More information

Beset by a difficult problem? Now is your chance to shine. Pick yourself up, get to work and get triumphantly through it.

Beset by a difficult problem? Now is your chance to shine. Pick yourself up, get to work and get triumphantly through it. CHEMISTRY 101 Hour Exam I September 20, 2016 Adams/Huynh Name Signature Section Beset by a difficult problem? Now is your chance to shine. Pick yourself up, get to work and get triumphantly through it.

More information

Chemistry Final Exam Sample Items

Chemistry Final Exam Sample Items Chemistry Final Exam Sample Items 1. Which best describes the current atomic theory? a. Atoms consist of electrons circling in definite orbits around a positive nucleus. b. Atoms are composed of electrons

More information

Chapter 4: Stoichiometry of Chemical Reactions. 4.1 Writing and Balancing Chemical Equations

Chapter 4: Stoichiometry of Chemical Reactions. 4.1 Writing and Balancing Chemical Equations Chapter 4: Stoichiometry of Chemical Reactions 4.1 Writing and Balancing Chemical Equations A chemical equation represents or symbolizes a chemical reaction. o Substances are represents by their chemical

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

Name CHEMISTRY / / Oxide Reactions & Net Ionic Reactions

Name CHEMISTRY / / Oxide Reactions & Net Ionic Reactions Name CHEMISTRY / / Oxide Reactions & Net Ionic Reactions The first type of reactions we will look at today are reactions between an oxide (a compound with oxygen as its anion) and water. There are two

More information

5. What is the name of the compound PbO? 6. What is the name of HCl(aq)?

5. What is the name of the compound PbO? 6. What is the name of HCl(aq)? 1. Which idea of John Dalton is no longer considered part of the modern view of atoms? (A) Atoms are extremely small. (B) Atoms of the same element have identical masses. (C) Atoms combine in simple whole

More information

22. What is the maximum concentration of carbonate ions that will precipitate BaCO 3 but not MgCO 3 from a solution that is 2.

22. What is the maximum concentration of carbonate ions that will precipitate BaCO 3 but not MgCO 3 from a solution that is 2. PX312-1718 1. What is the solubility product expression for Th(IO 3 ) 4? A) K sp = [Th 4+ ][4IO 3 ] 4 B) K sp = [Th 4+ ][IO 3 ] C) K sp = [Th][IO 3 ] 4 D) K sp = [Th 4+ ][IO 3 ] 4 E) K sp = [Th 4+ ][IO

More information

Net Ionic Reactions. The reaction between strong acids and strong bases is one example:

Net Ionic Reactions. The reaction between strong acids and strong bases is one example: Net Ionic Reactions Model 1 Net Ionic Reactions. Net ionic reactions are frequently used when strong electrolytes react in solution to form nonelectrolytes or weak electrolytes. These equations let you

More information

26. N 2 + H 2 NH N 2 + O 2 N 2 O 28. CO 2 + H 2 O C 6 H 12 O 6 + O SiCl 4 + H 2 O H 4 SiO 4 + HCl 30. H 3 PO 4 H 4 P 2 O 7 + H 2 O

26. N 2 + H 2 NH N 2 + O 2 N 2 O 28. CO 2 + H 2 O C 6 H 12 O 6 + O SiCl 4 + H 2 O H 4 SiO 4 + HCl 30. H 3 PO 4 H 4 P 2 O 7 + H 2 O Balance the following chemical equations: (Some may already be balanced.) 1. H 2 + O 2 H 2 O 2. S 8 + O 2 SO 3 3. HgO Hg + O 2 4. Zn + HCl ZnCl 2 + H 2 5. Na + H 2 O NaOH + H 2 6. C 10 H 16 + Cl 2 C +

More information

Exam III Material Chapter 7-CHEMICAL REACTIONS, continued

Exam III Material Chapter 7-CHEMICAL REACTIONS, continued Exam III Material Chapter 7-CHEMICAL REACTIONS, continued A chemical reaction occurs when there is a change in chemical composition. I. Double Replacement/Double Exchange/Metathesis Reactions In an double

More information

CHEMISTRY 101 EXAM 1 FORM 1J

CHEMISTRY 101 EXAM 1 FORM 1J CHEMISTRY 101 EXAM 1 SECTIONS 540-550 Dr. Joy Heising FORM 1J September 26, 2003 Directions: 1. This examination consists of two parts: 17 multiple choice questions (4 points each) in Part 1 and 3 free

More information

OH (ammonium hydroxide) are in 3.47 moles of NH 4. OH? 1 grams. 2 Na(s) + Cl 2. (g) 2 NaCl(s) (32.00 g/mol) according to the reaction C 3

OH (ammonium hydroxide) are in 3.47 moles of NH 4. OH? 1 grams. 2 Na(s) + Cl 2. (g) 2 NaCl(s) (32.00 g/mol) according to the reaction C 3 Question #: 1 Posting ID: 423347 Course: CHE 105 2015 SU Instructor: Sarah Edwards How many grams of NH 4 OH (ammonium hydroxide) are in 3.47 moles of NH 4 OH? 1 grams Question #: 2 When 2.61 grams of

More information

1. My answers for this Chemistry 102 exam should be graded with the answer sheet associated with: a) Form A b) Form B c) Form C d) Form D e) Form E

1. My answers for this Chemistry 102 exam should be graded with the answer sheet associated with: a) Form A b) Form B c) Form C d) Form D e) Form E Hour Exam I Page 1 1. My answers for this Chemistry 102 exam should be graded with the answer sheet associated with: a) Form A b) Form B c) Form C d) Form D e) Form E 2. Consider the measurements 9.74

More information

!!! DO NOT OPEN THIS EXAM BOOK UNTIL TOLD TO DO SO BY THE INSTRUCTOR!!!

!!! DO NOT OPEN THIS EXAM BOOK UNTIL TOLD TO DO SO BY THE INSTRUCTOR!!! CHEM 142 - Exam 1 Version B!!! DO NOT OPEN THIS EXAM BOOK UNTIL TOLD TO DO SO BY THE INSTRUCTOR!!! Instructor: Dr. Kari Pederson NO GRAPHING CALCULATORS ALLOWED Date: Friday, July 15 ONLY CALCULATORS MAY

More information

least reactive magnesium

least reactive magnesium 1 One way of establishing a reactivity series is by displacement reactions. (a) A series of experiments was carried out using the metals lead, magnesium, zinc and silver. Each metal was added in turn to

More information

Unit 4: Reactions and Stoichiometry

Unit 4: Reactions and Stoichiometry Unit 4: Reactions and Stoichiometry Reactions Chemical equation Expression representing a chemical reaction Formulas of reactants on the left side Formulas of products on the right side Arrow(s) connect(s)

More information

4. Magnesium has three natural isotopes with the following masses and natural abundances:

4. Magnesium has three natural isotopes with the following masses and natural abundances: Exercise #1. Determination of Weighted Average Mass 1. The average mass of pennies minted after 1982 is 2.50 g and the average mass of pennies minted before 1982 is 3.00 g. Suppose that a bag of pennies

More information

ACP Chemistry (821) - Mid-Year Review

ACP Chemistry (821) - Mid-Year Review ACP Chemistry (821) - Mid-Year Review *Be sure you understand the concepts involved in each question. Do not simply memorize facts!* 1. What is chemistry? Chapter 1: Chemistry 2. What is the difference

More information

May 09, Ksp.notebook. Ksp = [Li + ] [F + ] Find the Ksp for the above reaction.

May 09, Ksp.notebook. Ksp = [Li + ] [F + ] Find the Ksp for the above reaction. example: Constant Product K sp Solubility Product Constant Some compounds dissolve in water Some compounds dissolve better than others The more that a compound can dissolve, the more soluble the compound

More information

Unit 8 Chemical Reactions- Funsheets

Unit 8 Chemical Reactions- Funsheets Part A- Balancing Equations and Types of Reactions Balance AND identify the following reactions: Unit 8 Chemical Reactions- Funsheets 1) Mg + Zn(NO 3) 2 Zn Mg(NO 3) 2 2) Ba + AgNO 3 Ag + Ba(NO 3) 2 3)

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

Announcements. due tomorrow at start of discussion. 10/22 and (Type II) due Wednesday 10/24 by 7:00pm. Thurs. Must be present to get grade!

Announcements. due tomorrow at start of discussion. 10/22 and (Type II) due Wednesday 10/24 by 7:00pm. Thurs. Must be present to get grade! Announcements 1. Limiting Reactants lab write-up due tomorrow at start of discussion. 2. Online HW 5 (Type I) due Monday 10/22 and (Type II) due Wednesday 10/24 by 7:00pm. 3. Stoichiometry workshop next

More information

1) REACTIONs: a) Al4C3(s) + H2O (l)=> Al(OH)3 (s) + CH4 (g) Solution : Al4C3(s) + 12 H2O (l)=> 4Al(OH)3 (s) + 3CH4 (g)

1) REACTIONs: a) Al4C3(s) + H2O (l)=> Al(OH)3 (s) + CH4 (g) Solution : Al4C3(s) + 12 H2O (l)=> 4Al(OH)3 (s) + 3CH4 (g) 1) REACTIONs: a) Al4C3(s) + H2O (l)=> Al(OH)3 (s) + CH4 (g) Balance the reaction. Describe the chemical process represented by this reaction. Write the name of each single reactant and product. First,

More information

Chapter 3: Solution Chemistry (For best results when printing these notes, use the pdf version of this file)

Chapter 3: Solution Chemistry (For best results when printing these notes, use the pdf version of this file) Chapter 3: Solution Chemistry (For best results when printing these notes, use the pdf version of this file) Section 3.1: Solubility Rules (For Ionic Compounds in Water) Section 3.1.1: Introduction Solubility

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

CHEMISTRY 102 A/E Fall 2008 HOUR EXAM I NAME Dr. Christine Yerkes. A. DO NOT open the exam until you are instructed to do so.

CHEMISTRY 102 A/E Fall 2008 HOUR EXAM I NAME Dr. Christine Yerkes. A. DO NOT open the exam until you are instructed to do so. CHEMISTRY 102 A/E Fall 2008 HOUR EXAM I NAME Dr. Christine Yerkes October 1, 2008 SIGNATURE Test Form A QUIZ TA A. DO NOT open the exam until you are instructed to do so. B. The exam has 6 pages. After

More information

VOCABULARY Define. 1. reactants. 2. products. 3. chemical equation. 4. precipitate. 5. word equation

VOCABULARY Define. 1. reactants. 2. products. 3. chemical equation. 4. precipitate. 5. word equation CHAPTER 8 HOMEWORK 8-1 (pp. 241 245) Define. 1. reactants 2. products 3. chemical equation 4. precipitate 5. word equation GRAPHIC ORGANIZER Complete the chart by listing three signs that suggest that

More information

Solubility Rules and Net Ionic Equations

Solubility Rules and Net Ionic Equations Solubility Rules and Net Ionic Equations Why? Solubility of a salt depends upon the type of ions in the salt. Some salts are soluble in water and others are not. When two soluble salts are mixed together

More information

Name Period CH 180 Practice Test: Chapters 3 and 4

Name Period CH 180 Practice Test: Chapters 3 and 4 Name Period CH 180 Practice Test: Chapters 3 and 4 Multiple Choice: 1. 11. 2. 12. 3. 13. 4. 14. 5. 15. 6. 16. 7. 17. 8. 18. 9. 19. 10. 20. 21. 22. 23. 24. 25. 26. 27. 1 Directions: Answer all questions.

More information

PRACTICE EXAMINATION QUESTIONS FOR 1.2 AMOUNT OF SUBSTANCE

PRACTICE EXAMINATION QUESTIONS FOR 1.2 AMOUNT OF SUBSTANCE PRACTICE EXAMINATION QUESTIONS FOR 1.2 AMOUNT OF SUBSTANCE 1. Nitroglycerine, C 3 H 5 N 3 O 9, is an explosive which, on detonation, decomposes rapidly to form a large number of gaseous molecules. The

More information

Chemistry Semester One Exam Review

Chemistry Semester One Exam Review Chemistry Semester One Exam Review Name: 1. Compare physical and chemical changes in matter. 2. State the law on conservation of mass. 3. On which type of mixture(s) does the Tyndall Effect scatter light?

More information

AP Chemistry Unit 2 Test (Chapters 3 and 4)

AP Chemistry Unit 2 Test (Chapters 3 and 4) AP Chemistry Unit 2 Test (Chapters 3 and 4) NAME: 1. A student is assigned the task of determining the mass percent of silver in an alloy of copper and silver by dissolving a sample of the alloy in excess

More information

Naming salts. Metal Acid Salt. Sodium hydroxide reacts with Hydrochloric acid to make Sodium chloride

Naming salts. Metal Acid Salt. Sodium hydroxide reacts with Hydrochloric acid to make Sodium chloride Naming salts A salt is any compound formed by the neutralisation of an acid by a base. The name of a salt has two parts. The first part comes from the metal, metal oxide or metal carbonate. The second

More information

CHEM 101A EXAM 1 SOLUTIONS TO VERSION 1

CHEM 101A EXAM 1 SOLUTIONS TO VERSION 1 CHEM 101A EXAM 1 SOLUTIONS TO VERSION 1 Multiple-choice questions (3 points each): Write the letter of the best answer on the line beside the question. Give only one answer for each question. B 1) If 0.1

More information

Chem. 1A Final. Name. Student Number

Chem. 1A Final. Name. Student Number Chem. 1A Final Name Student Number All work must be shown on the exam for partial credit. Points will be taken off for incorrect or no units. Calculators are allowed. Cell phones may not be used for calculators.

More information

Chemical Equations. Chemical Reactions. The Hindenburg Reaction 5/25/11

Chemical Equations. Chemical Reactions. The Hindenburg Reaction 5/25/11 Chemical Reactions CHM 1032C Chemical Equations Chemical change involves a reorganization of the atoms in one or more substances. The Hindenburg Reaction Reactants are on left, products to the right. Arrow

More information

Unit (2) Quantitative Chemistry

Unit (2) Quantitative Chemistry Unit (2) Quantitative Chemistry Chapter (1) :The mole & chemical equation Lesson (1) Mole and chemical equation Chemical equation: The chemical symbols and formulas of the reactants and products which

More information

Assignment 04 (A) a) ii and iii b) i, ii, and iii c) i, iv, and v d) iii e) ii (These are molecular compounds.)

Assignment 04 (A) a) ii and iii b) i, ii, and iii c) i, iv, and v d) iii e) ii (These are molecular compounds.) Assignment 04 (A) 1- Which of the following are nonelectrolytes in water? (i) HF (ii) ethanol, C 2 H 5 OH (iii) C 12 H 22 O 11 (iv) KClO 3 (v) Cu(NO 3 ) 2 a) ii and iii b) i, ii, and iii c) i, iv, and

More information

Study Guide: Stoichiometry

Study Guide: Stoichiometry Name: Study Guide: Stoichiometry Period: **YOUR ANSWERS MUST INCLUDE THE PROPER NUMBER OF SIG FIGS AND COMPLETE UNITS IN ORDER TO RECEIVE CREDIT FOR THE PROBLEM.** BALANCE THE FOLLOWING EQUATIONS TO USE

More information

Final Exam Review Questions You will be given a Periodic Table, Activity Series, and a Common Ions Chart CP CHEMISTRY

Final Exam Review Questions You will be given a Periodic Table, Activity Series, and a Common Ions Chart CP CHEMISTRY Final Exam Review Questions You will be given a Periodic Table, Activity Series, and a Common Ions Chart CP CHEMISTRY Part A True-False State whether each statement is true or false. If false, correct

More information

CHM 134 General Chemistry I Exam 2 Review, Dr. Steel. 1. Give the oxidation number of sulfur in each of these compounds.

CHM 134 General Chemistry I Exam 2 Review, Dr. Steel. 1. Give the oxidation number of sulfur in each of these compounds. CHM 1 General Chemistry I Exam Review, Dr. Steel Name 1. Give the oxidation number of sulfur in each of these compounds. H S SO H SO SO -. In the lab you reacted magnesium metal and oxygen gas to produce

More information

Name HONORS CHEMISTRY / / Oxide Reactions & Net Ionic Reactions

Name HONORS CHEMISTRY / / Oxide Reactions & Net Ionic Reactions Name HONORS CHEMISTRY / / Oxide Reactions & Net Ionic Reactions The first type of reactions we will look at today are reactions between an oxide (a compound with oxygen as its anion) and water. There are

More information