Review exercises. Yr 8 ( ) 1. Chemical formulation

Similar documents
Inorganic Chemical Formulation. Ms. María Isern

Semester 1 Review Chemistry

CHEMICAL EQUATIONS WHAT BALANCING AN EQUATION MEANS

AP Chemistry - Summer Assignment

Spring Semester Final Exam Study Guide

ed. Brad Collins Aqueous Chemistry Chapter 5 Some images copyright The McGraw-Hill Companies, Inc. Sunday, August 18, 13

CHAPTER 2 CHEMICAL FORMULAS & COMPOSITION STOICHIOMETRY

2. 2 Complete this table of the parts of an atom: Particle Charge Location in atom Proton. Negative

NATIONAL 5 CHEMISTRY

Regents Chemistry Practice Problems from Units 1-9 March 2018

Please hand your completed booklet to your Chemistry tutor when you begin A Level Chemistry in September

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

AP Chemistry Honors Unit Chemistry #4 2 Unit 3. Types of Chemical Reactions & Solution Stoichiometry

Year 12 Chemistry Transition Work - QPHS

Unit Two Worksheet WS DC U2

Ch 4-5 Practice Problems - KEY

SCH4U Chemistry Review: Fundamentals

AP CHEMISTRY THINGS TO KNOW

ACP Chemistry (821) - Mid-Year Review

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

Lesson (1) Mole and chemical equation

Funsheet 3.0 [WRITING & BALANCING EQUATIONS] Gu/R. 2017

Chapter 4. Aqueous Reactions and Solution Stoichiometry

5. The mass of oxygen required to completely convert 4.0 grams of hydrogen to water is 1) 8.0 grams; 2) 2.0 grams; 3) 32 grams; 4) 16 grams.

4. What is the law of constant composition (also known as the law of definite proportion)?

Chemical Reactions. Chemical changes are occurring around us all the time

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.)

Chemistry. Bridging the Gap Summer Homework. Name..

Balancing Equations Notes

AP Chemistry Unit #4. Types of Chemical Reactions & Solution Stoichiometry

For Practice 4.1 Magnesium hydroxide, the active ingredient in milk of magnesia, neutralizes stomach acid, primarily HCl, according to the reaction:

UNIT 1 Chemical Reactions Part II Workbook. Name:

Balancing Equations Notes

Explain freezing-point depression and boiling-point elevation at the molecular level.

1) What is the volume of a tank that can hold Kg of methanol whose density is 0.788g/cm 3?

Chapter 6 Inorganic and Organic Compounds: Names and Formulas

Chapter 4 Compounds and Their Bonds. Octet Rule. Metals Form Positive Ions. Ionic and Covalent Bonds. Formation of a Sodium Ion, Na +

1. Hydrochloric acid is mixed with aqueous sodium bicarbonate Molecular Equation

Chemical Reactions and Equations

4. What is the law of constant composition (also known as the law of definite proportion)?

Due Friday, August 18 th, 2017 Mrs. Hockstok - AP Chemistry Class Olentangy Orange High School Summer Assignment

The Masses of chemicals

8 Chemical Equations. Flames and sparks result when aluminum foil is dropped into liquid bromine.

2 nd Semester Study Guide 2017

Balancing Equations Notes

Formulas and Models 1

(2) (1) (2) The isotopic composition of a sample of sulphur is found using a mass spectrometer.

ANSWERS: Atoms and Ions

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

ESA Study Guide Year 10 Science

Experiment #3: When 2.0 g of sodium hydroxide reacts with 2.2 g carbon dioxide, 4.2 g of baking soda (sodium bicarbonate) is produced.

2014 Chemistry 1 st Semester Exam Review Packet

DOUBLE DISPLACEMENT REACTIONS. Double your pleasure, double your fun

Part A Answer all questions in this part.

C2.6 Quantitative Chemistry Foundation

Chemistry Midterm Exam Review Sheet Spring 2012

Focus on National 5. Unit 1 - Chemical Changes and Structure

3. Atoms and Molecules. Mark (1) Mark (1) Mark (1) Mark (1) Mark (1) Mark (1) Marks (2)

Symbols. Table 1 A set of common elements, their symbols and physical state

CHEM 1413 Chapter 4 Homework Questions TEXTBOOK HOMEWORK

Name... Requirements for the task and Chemistry lessons

Question 8 Chemical properties of metals and nonmetals. 1) magnesium 2) sulfur trioxide 3) iron (II) hydroxide 4) sodium nitrate

MULTIPLE CHOICE. Choose the one alternative that best completes the statement or answers the question.

General Chemistry Multiple Choice Questions Chapter 8

WELCOME TO AS CRAWSHAW! OCR Chemistry

Acids and Bases. Unit 10

Questions Booklet. UNIT 1: Principles & Applications of Science I CHEMISTRY SECTION. Level 3 Applied Science. Name:.. Teacher:..

How to become a formulation hero

Final Review Packet. When 100% correct, you will receive a

CHEMISTRY 101 EXAM 1 FORM 1J

1st Semester Review Worth 10% of Exam Score

Balancing Equations Notes

Welcome to AP Chemistry

C4 Quick Revision Questions

Honor s Chemistry: Fall Semester Final

CHEMISTRY. SCIENCE Paper 2

IGCSE (9-1) Edexcel - Chemistry

Atoms What subatomic particles make up the atom?

2 nd Semester Study Guide 2016

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

CHAPTER 9 CHEMICAL QUANTITIES

Name Period CH 180 Practice Test: Chapters 3 and 4

Choose words from the list to complete the sentences below. In an atom, the particles with a negative charge are called...

A. ATOMS Name Period Date 1. Complete the following table. Element Symbol Number of Protons. Number of electrons Ac 227

Unit V: Solutions. A. Properties of Solutions. B. Concentration Terms of Solutions. C. Mass Percent Calculation. D. Molarity of Solutions

Various Types of Reactions

Name Date. 9. Which substance shows the least change in solubility (grams of solute) from 0 C to 100 C?

Unit 4. Chemical Calculations

Formulas for Ionic Compounds

(DO NOT WRITE ON THIS TEST)

Practice Multiple Choice

CHM2045 Exam 1 Review Questions Fall 2015

AP Chemistry - Ms. Ganz Welcome to AP Chemistry

Q1. As the world population increases there is a greater demand for fertilisers.


BALANCING EQUATIONS NOTES

Mr. Storie 40S Chemistry Student Acid and bases Unit. Acids and Bases

During photosynthesis, plants convert carbon dioxide and water into glucose (C 6 H 12 O 6 ) according to the reaction:

Chemistry 11 Final Exam Review. 3. Make sure you review your Safety Test from the beginning of the semester.

A-LEVEL TRANSITION COURSE SUMMER 2018 PART 2: USING CHEMICAL EQUATIONS

Transcription:

Review exercises 1. Chemical formulation 1)Write the name and chemical formula: 2) Write the name and chemical formula: Iron(II) oxide: Calcium hydroxide: Sodium oxide: Perbromic acid: Gold(III) oxide: Potassium sulfate: Silver oxide: Calcium carbonate: Aluminium oxide: Phosphoric acid: Li2O : Ni(SO3)2 : Cl2O5 : Pb(OH)4 : H3AsO4 : Mg(OH)2 : Ni2O3 : Co(OH)3 : H2SO4 : CuOH : Chloric acid: H2S: Hydrobromic acid: HNO3: HI : HBrO: Iron(III) iodide: NH3 : Methane: SnS2 : Iron(III) sulfide: CoF2 : Sodium chloride: FeBr3 : Potassium bromide: CdCl2 : Borane: LiH: 2. Define the difference between fundamental and derived physical magnitude and give an example of each. 3. Write down the SI units of the following physical magnitudes: Mass, Density, Length, Volume, Temperature, Weight (Force Weight), Acceleration, Velocity, Energy, Work, Concentration of a solution in mass concentration,

4. A car travels at a steady speed of 20 m/s. Calculate the distance travelled in 5 s. 5. Change 90 km/h to m/s using conversion factor. 6. Determine the average speed of a car if it travels 600km in 3h. 7. What is the acceleration of a motorcycle that goes from rest to 30 m/s in 10 s? 8. Define density. Write its mathematical formula or equation. Outline if it is an extensive (general) or as intensive (characteristic) property of matter. 9. Define boiling point and explain what happens to the particles of a liquid in order to turn into a gas. 10. Outline the differences between a homogenous and a heterogenous mixture and give an example of each. 11. How many grams of table salt do we need to make a 250 ml solution with a mass concentration of 10 g/l? 12. A solution of water and sugar has a mass concentration of 20 g/l. If 18 g of sugar were added to the water, what is the volume of our solution? 13. How many grams of solute do I need to make a 400 cm 3 of a solution with a mass concentration of 12g/L? 14. We use 50 ml of pure water to make a NaCl solution. Calculate the amount of NaCl used if the solution is 30% NaCl by mass. 15. Calculate the mass percent of the following solutions: a) 40 g of table salt in 250 g of water; b) 50 g of sugar in 1 kg of solution; c) 12 g silver nitrate in half a litre of pure water. 16. The subatomic particles of the atom are the, with a charge. The, with a charge and the with no charge. In the nucleus of the atom we find the and the, and the, are found in energy shells around the nucleus. 17. An element found in the second period of the periodic table has 3 electrons. To which group does it belong?

18. Complete the following table: Element Z A Number of electrons Number of neutrons Name of the element Most probable ion A 35 80 Don t need B 32 16 To C 18 40 do D 32 41 this 19. Sodium has Z = 11 and A = 23. Determine its number of electrons and explain how you know. Also determine the number of neutrons. 20. Define ion, and state the two types. 21. Hydrochloric acid reacts with Sodium hydroxide to produce sodium chloride and water. a) Write the balanced chemical equation b) If during the reaction 20g of salt are produced, how many moles of acid did we start with? 22. A car takes 8 s to increase its velocity from 10 m/s to 30 m/s. What is its average acceleration? 23. An aircraft on its take-off run has a steady acceleration of 3 m/s 2. a) What velocity does the aircraft gain in 4 s? b) If the aircraft passes one post on the runway at a velocity of 20 m/s, what is its velocity 8 s later? 24. Mass is a quantity that measures: a) The amount of matter in an object b) The weight of an object 25. Express the following using scientific notation: a) 12000 N b) 34500000 kg c) 57,30 kg

d) 4580000000000 J 26. Atoms are ordered in the periodic table according to their, which determines the number of. In an neutral atom, this number is also equal to the number of. 27. Calculate the molecular mass of the following compounds: a) Potassium chloride b) hydrochloric acid c) H2O d) KClO3 Atomic masses: K:39; O:16; Cl:35.5; H:1 28. Calcium has A = 40 and Z = 20. Explain the following questions: How many electrons, protons and neutrons make up the calcium atom? How many electrons, protons and neutrons would an isotope have if A = 41? 29. An atom of silver has 61 neutrons and Z = 47. a) Write the chemical symbol of silver and give its mass number. b) Explain how many electrons, protons and neutrons does silver have? 30. Write and balance the following chemical equations: a) Fe reacts with S8 to produce Iron(II) sulfide b) Al reacts with Hydrochloric acid to produce Aluminium chloride and H2 c) Water decomposes into H2 and O2 d) HNO3 reacts with Cu producing Cu(NO3)2 and H2 e) KClO3 decomposes into Potassium chloride and O2 31. Balance the following chemical equations, and answer the corresponding question about each one: a) HCl + NaOH NaCl + H2O i. If we start with 2 moles of HCl, how many moles of the salt will be produced? b) AlBr3 + K KBr + Al ii. If we start 1 mole of AlBr3, how many moles of KBr will be produced? c) Mg + O2 MgO iii. Write down the mole ratio of the reaction. 32. Calculate the number of moles in 234g of magnesium hydroxide Mg(OH)2. Atomic masses: Mg: 24.5; H:1; O:16. 33. How many grams are there in 5 moles of water? Atomic masses: H:1; O:16.

34. How many moles are there in 48g of magnesium? Atomic mass: Mg: 24.5 35. Given the following chemical reaction: Atomic masses: Na: 23; O:16 Na + O2 Sodium oxide (s) a) Write the balanced chemical equation. b) How many moles of sodium oxide are produced? c) How many grams of sodium are consumed? d) What could you do to speed up the rate of the above reaction? Explain how what you have suggested will actually increase the rate of the reaction. To revise more physics just go over the problems and the theory in the different worksheets for the corresponding units.