Question. A. Incorrect! Check the definition for period. B. Incorrect! Check the definition for speed.

Size: px
Start display at page:

Download "Question. A. Incorrect! Check the definition for period. B. Incorrect! Check the definition for speed."

Transcription

1 AP Physics - Problem Drill 11: Vibrations and Waves. Instruction: (1) Read the problem statement and answer choices carefully (2) Work the problems on paper as 1. The following definitions are used to describe the oscillatory motion of a body. Identify what is being defined in each of these statements. (1) The distance from the equilibrium point to the body at an instant in time. (2) The maximum displacement from the equilibrium point. (3) The time to move through one complete cycle, or oscillation. (4) The number of oscillations per unit of time. (A) displacement, (2) period, (3) frequency, (4) amplitude (B) displacement, (2) amplitude (3) speed (4) period (C) displacement, (2) amplitude (3) period (4) frequency (D) amplitude (2) period (3) frequency (4) speed (E) amplitude (2) displacement (3) frequency (4) period Check the definition for period. Check the definition for speed. C. Correct! Start with the displacement of the oscillatory motion, then amplitude, period, and finally frequency. D. Incorrect! Check the definition of frequency. Review all the terms used to describe oscillatory motion. Displacement: The distance from the equilibrium point to the body at any instant in time. Amplitude: The maximum displacement from the equilibrium point. Period: The time to move through one complete cycle, or oscillation. Frequency: The number of oscillations per unit of time. The correct answer is (C).

2 No. 2 of Which of these statements does not describe a simple harmonic oscillator? (A) A vibrating system in which the restoring force is directly proportional to the negative of the displacement. (B) A mass that vibrates at its natural frequency on the free end of a spring. (C) The pendulum of a grandfather clock. (D) A vibrating system whose period of oscillation depends on the amplitude of the oscillation. (E) A vibrating system whose period of oscillation is proportional to the square root of the mass of the system. A simple harmonic oscillator is a vibrating system that obeys the equation F= -kx. Where F is force, k is a force constant, and x is displacement. The negative sign indicates that it is a restorative force, meaning that the force acts to bring the system back to the equilibrium position. A mass on a spring follows the equation F= -kx. Where F is force, k is a force constant, and x is displacement. A pendulum is one of the examples that are typically given. Provided that the angle over which it swings is not too large the pendulum will move in SHM. The period of oscillation for a system in simple harmonic motion is given by the m equation T 2, where m is mass, k is force constant. There is no term for k amplitude. The period of oscillation for a system in simple harmonic motion is given by the m equation T 2, where m is mass, k is force constant. k A simple harmonic oscillator is a vibrating system that obeys the equation F= -kx. Where F is force, k is a force constant, and x is displacement. The negative sign indicates that it is a restorative force, meaning that the force acts to bring the system back to the equilibrium position. A mass on a spring follows the equation F= -kx. A pendulum is one of the examples that are typically given. Provided that the angle over which it swings is not too large the pendulum will move in SHM. The period of oscillation for a system in simple harmonic motion is given by the m equation T 2, where m is mass, k is force constant. There is no term for k amplitude.

3 No. 3 of Five stationary pendulums are suspended from a single line, the ends of which are tied to supports. The pendulum on the far right is set into motion. Which pendulum vibrates with the largest amplitude? A B C D Drive (A) All the pendulums will vibrate with the same amplitude as the drive pendulum. (B) Pendulum D will vibrate with the highest amplitude. (C) It depends on the mass of the drive pendulum. (D) Pendulum A (E) Pendulum A and D All the pendulums will be set into motion, but the question asks which has the largest amplitude. The drive pendulum will vibrate at its natural frequency. What does the natural frequency of each pendulum depend on? l The period, of a pendulum does not depend on its mass. Remember, T 2, g where l is length of the pendulum and g is acceleration due to gravity. Pendulum A has the same length so will have the same natural frequency as the drive pendulum; this will result in resonance and a rapid transfer of energy and large amplitude. Since has the same length of pendulum A is the same as the drive pendulum l and T 2, they will both have the same natural frequency. g Pendulum A is the same length as the drive pendulum, so they will have the same natural frequency; this will result in resonance and a rapid transfer of energy and large amplitude for pendulum A. The period, of a pendulum does not depend on its mass. Remember, l T 2, g where l is length of the pendulum and g is acceleration due to gravity. Frequency is 1/T.

4 No. 4 of Which of these is incorrect statement about mechanical waves? (A) The ripples generated when a pebble is thrown into a pond are an example of mechanical waves. (B) A medium is any material through which a mechanical wave travels. (C) In a longitudinal wave the direction of propagation of the wave and the direction of the particle vibration are the same. (D) In a transverse wave the particle vibration in a direction parallel to the direction of propagation of the wave. (E) The sound waves created when a drum is beaten are an example of a longitudinal wave. A mechanical wave is a disturbance that travels through a medium. In this case the medium is water. The medium is any material that a mechanical wave travels through; for example air, water, or even your body. For a longitudinal wave the particles in the medium will vibrate in the same direction (parallel) to the direction in which the wave is travelling. For a transverse wave the particles in the medium will vibrate in a direction perpendicular to the direction in which the wave is travelling. Sound waves are longitudinal waves. A mechanical wave is a disturbance that travels through a medium. The medium is any material that a wave travels through, for example air, water, or even your body. For a longitudinal wave the particles in the medium will vibrate in the same direction (parallel) to the direction in which the wave is travelling. Sound waves are longitudinal waves. For a transverse wave the particles in the medium will vibrate in a direction perpendicular to the direction in which the wave is travelling.

5 No. 5 of Which of these distances would be the wavelength of the wave shown? A C (A) A (B) B (C) C (D) All of them (E) None of them B Wavelength is the distance between any two successive points that are in identical positions (in phase) on the wave. Wavelength is the distance between any two successive points that are in identical positions (in phase) on the wave. Wavelength is the distance between any two successive points that are in identical positions (in phase) on the wave. Wavelength is the distance between any two successive points that are in identical positions (in phase) on the wave. Typically the wavelength is illustrated as the distance between two successive peaks or two successive troughs; in fact the wavelength is the distance between any two successive points that are in identical positions (in phase) on the wave. Typically the wavelength is illustrated as the distance between two successive peaks or two successive troughs; in fact the wavelength is the distance between any two successive points that are in identical positions (in phase) on the wave.

6 No. 6 of Two transverse waves on identical strings have frequencies in a ratio of 3 to 2. If their wave speeds are the same, then how do their wavelengths compare? (A) 3:2 (B) 2:3 (C) 9:2 (D) 2:9 (E) 1:6 Frequency and wavelength are not directly proportional. B. Correct Frequency and wavelength are inversely proportional to each other. The wave with the greatest frequency has the shortest wavelength. The wave equation can be used to find the relationship between, speed, frequency and wavelength. D. Incorrect! The wave equation can be used to find the relationship between, speed, frequency and wavelength. The wave equation can be used to find the relationship between, speed, frequency and wavelength The wave equation states that wave speed (v) is equal to the wavelength (λ) times the frequency, (f). v = λf This equation can be rearranged to find the relationship between wavelength and speed and frequency v λ = f So wavelength is inversely proportional to frequency. If the speed is the same for the two waves, which ever wave has the smallest frequency will have the largest wavelength. The ratio will swap. The correct answer is (B).

7 No. 7 of 10 Instruction: (1) Read the problem statement and answer choices carefully (2) Work the problems on paper as needed (3) Pick the answer (4) Go back to review the core concept tutorial as needed. 7. The picture shows a wave pulse travelling back down a rope after it has been reflected. Which of these shows the incident waves for (1) Fixed end reflection (2) Free end reflection? A. 1 2 Air Wall B. 1 2 (1) Fixed end reflection C. 1 2 (2) Free end reflection D. 1 2 E. Insufficient information. A wave that is reflected from a fixed end boundary does not behave in the same way as one reflected from a free end. For a free end reflection the direction of the displacement does not change. For a free end reflection the direction of the displacement does not change. When an incident wave is reflected at boundary that is more dense than the medium it has been travelling in. A wave that is reflected from a fixed end boundary does not behave in the same way as one reflected from a free end. When an incident wave is reflected at a fixed boundary, which is made of a denser medium than the medium the incident wave is travelling through, the reflected wave is inverted. If a crest is incident then the reflection is a trough. When an incident wave is reflected at a free end, or at a medium that is less dense than the medium the incident wave is travelling through, the displacement of the reflected wave is the same as the incident wave. If a crest is incident it is reflected as a crest. Answer: D. 1 2

8 No. 8 of What will happen when two waves pass through the same region of a medium at the same time? (A) They interfere. (B) The resultant displacement at any point and time is the sum of the individual displacements at that point and time. (C) The principle of wave superstition is in effect. (D) Both A and B but not C. (E) A, B and C. Review all the statements. Review all the statements. Review all the statements. D. Incorrect! Review the definition of superposition. E. Correct! Two waves will interfere. The principle of wave superposition is that when two or more waves interfere, the resultant displacement will be the sum of the displacements of the individual waves. Two waves will interfere. The principle of wave superposition is that when two or more waves interfere, the resultant displacement will be the sum of the displacements of the individual waves. When adding the displacements, a crest is considered to be positive and a trough negative. The correct answer is (E).

9 No. 9 of The picture shows how the displacement of two waves changes as a function of time. If these two waves interfere, which of these represents the resultant wave? t= A. B. C. D. t= E. For constructive interference the waves must be completely in phase. For destructive interference the waves must be completely out of phase. The waves will interfere; use the principle of wave superposition. These waves are out of phase by ¼ of a cycle. There is constructive and destructive interference, the maximum displacement occurs when the waves cross. In this case the resultant amplitude will be greater than the amplitude of the individual waves. The two waves are out of phase by ¼ of a cycle. There will be constructive and destructive interference. The maximum displacement occurs where the two waves cross over. This is best seen by drawing the waves on the same graph, as shown and using the principle of superposition. t=

10 No. 10 of Which of these is not a characteristic of a standing (stationary) wave created by two travelling waves? (A) The point of minimum displacement is an antinode. (B) The two travelling waves must have the same frequency and amplitude. (C) At a node the standing wave has no displacement. (D) The amplitude of the standing wave is twice that of the two waves. (E) The standing wave has the same wavelength as travelling waves. A. Correct! A node is the point of minimum displacement. An antinode is a point of maximum displacement. To produce a standing wave the two travelling waves would have to have both the same frequency and amplitude. A node is the point of minimum displacement. D. Incorrect! The amplitude of the standing wave is twice that of the two waves. This is the principle of wave superposition. A standing wave will have the same wavelength as the travelling wave. A standing wave will be created by two travelling waves that are moving in opposite directions and have the same amplitude, and frequency. The resulting standing wave will have amplitude that is twice that of the travelling waves. The standing wave will have points of minimum displacement, which are called nodes and maximum displacement called antinodes. The position of these nodes and antinodes do not change over time, hence the name standing or stationary wave. The correct answer is (A).

Physics Mechanics

Physics Mechanics 1 Physics 170 - Mechanics Lecture 33 Waves Wave notion 2 A wave pulse is a disturbance that propagates through a medium. It transfers energy without transferring matter; the energy is a combination of

More information

Preview. Vibrations and Waves Section 1. Section 1 Simple Harmonic Motion. Section 2 Measuring Simple Harmonic Motion. Section 3 Properties of Waves

Preview. Vibrations and Waves Section 1. Section 1 Simple Harmonic Motion. Section 2 Measuring Simple Harmonic Motion. Section 3 Properties of Waves Vibrations and Waves Section 1 Preview Section 1 Simple Harmonic Motion Section 2 Measuring Simple Harmonic Motion Section 3 Properties of Waves Section 4 Wave Interactions Vibrations and Waves Section

More information

Waves & Interference

Waves & Interference Waves & Interference I. Definitions and Types II. Parameters and Equations III. Sound IV. Graphs of Waves V. Interference - superposition - standing waves The student will be able to: HW: 1 Define, apply,

More information

Pre AP Physics: Unit 7 Vibrations, Waves, and Sound. Clear Creek High School

Pre AP Physics: Unit 7 Vibrations, Waves, and Sound. Clear Creek High School Pre AP Physics: Unit 7 Vibrations, Waves, and Sound Clear Creek High School Simple Harmonic Motion Simple Harmonic Motion Constant periodic motion of an object. An object oscillates back and forth along

More information

Slide 2 / 28 Wave Motion. A wave travels along its medium, but the individual particles just move up and down.

Slide 2 / 28 Wave Motion. A wave travels along its medium, but the individual particles just move up and down. Slide 1 / 28 Waves Slide 2 / 28 Wave Motion A wave travels along its medium, but the individual particles just move up and down. Slide 3 / 28 Wave Motion All types of traveling waves transport energy.

More information

Mechanical waves Electromagnetic waves

Mechanical waves Electromagnetic waves Waves Energy can be transported by transfer of matter. For example by a thrown object. Energy can also be transported by wave motion without the transfer of matter. For example by sound waves and electromagnetic

More information

Chapter 15 Wave Motion. Copyright 2009 Pearson Education, Inc.

Chapter 15 Wave Motion. Copyright 2009 Pearson Education, Inc. Chapter 15 Wave Motion 15-1 Characteristics of Wave Motion All types of traveling waves transport energy. Study of a single wave pulse shows that it is begun with a vibration and is transmitted through

More information

Chapter 11 Waves. Waves transport energy without transporting matter. The intensity is the average power per unit area. It is measured in W/m 2.

Chapter 11 Waves. Waves transport energy without transporting matter. The intensity is the average power per unit area. It is measured in W/m 2. Energy can be transported by particles or waves: Chapter 11 Waves A wave is characterized as some sort of disturbance that travels away from a source. The key difference between particles and waves is

More information

Vibrations are the sources of waves. A vibration creates a disturbance in a given medium, that disturbance travels away from the source, carrying

Vibrations are the sources of waves. A vibration creates a disturbance in a given medium, that disturbance travels away from the source, carrying Vibrations are the sources of waves. A vibration creates a disturbance in a given medium, that disturbance travels away from the source, carrying energy with it, we call this traveling disturbance a wave.

More information

INTRODUCTION TO WAVES. Dr. Watchara Liewrian

INTRODUCTION TO WAVES. Dr. Watchara Liewrian INTRODUCTION TO WAVES Dr. Watchara Liewrian What are Waves? Rhythmic disturbances that carry energy without carrying matter Types of Waves Mechanical Waves need matter (or medium) to transfer energy A

More information

Algebra Based Physics

Algebra Based Physics Algebra Based Physics Waves www.njctl.org Table of Contents Click on the topic to go to that section Types of Waves Standing Waves on a String Table of Contents https://www.njctl.org/video/?v=ywgtos4xmqo

More information

Chapter 19: Vibrations and Waves

Chapter 19: Vibrations and Waves Chapter 19: Vibrations and Waves SIMPLE HARMONIC MOTION ic or Oscillatory motion is called SHM. Start off with the story of Galileo being in the church. PENDULUM Make the following points with a pendulum

More information

Waves. harmonic wave wave equation one dimensional wave equation principle of wave fronts plane waves law of reflection

Waves. harmonic wave wave equation one dimensional wave equation principle of wave fronts plane waves law of reflection Waves Vocabulary mechanical wave pulse continuous periodic wave amplitude wavelength period frequency wave velocity phase transverse wave longitudinal wave intensity displacement wave number phase velocity

More information

Conceptual Physics. Chapter 25: Vibrations and Waves Mr. Miller

Conceptual Physics. Chapter 25: Vibrations and Waves Mr. Miller Conceptual Physics Chapter 25: Vibrations and Waves Mr. Miller Vibrations A vibration is a wiggle in time A vibration cannot exist in one instant, but needs time to move back and forth. Waves A wave is

More information

Chapter 14. Vibrations and Waves

Chapter 14. Vibrations and Waves Chapter 14 Vibrations and Waves Chapter 14 Vibrations and Waves In this chapter you will: Examine vibrational motion and learn how it relates to waves. Determine how waves transfer energy. Describe wave

More information

Wave Motion. interference destructive interferecne constructive interference in phase. out of phase standing wave antinodes resonant frequencies

Wave Motion. interference destructive interferecne constructive interference in phase. out of phase standing wave antinodes resonant frequencies Wave Motion Vocabulary mechanical waves pulse continuous periodic wave amplitude period wavelength period wave velocity phase transverse wave longitudinal wave intensity displacement amplitude phase velocity

More information

Chapter 14: Waves. What s disturbing you?

Chapter 14: Waves. What s disturbing you? Chapter 14: Waves What s disturbing you? Wave Properties Waves carry energy through matter. The matter can move with the wave, or at right angles to it. Newton s laws and conservation laws govern the behavior

More information

6. An oscillator makes four vibrations in one second. What is its period and frequency?

6. An oscillator makes four vibrations in one second. What is its period and frequency? Period and Frequency 19.1 The period of a pendulum is the time it takes to move through one cycle. As the ball on the string is pulled to one side and then let go, the ball moves to the side opposite the

More information

Chapter 11 Waves. Waves transport energy without transporting matter. The intensity is the average power per unit area. It is measured in W/m 2.

Chapter 11 Waves. Waves transport energy without transporting matter. The intensity is the average power per unit area. It is measured in W/m 2. Chapter 11 Waves Energy can be transported by particles or waves A wave is characterized as some sort of disturbance that travels away from a source. The key difference between particles and waves is a

More information

Waves and Sound. Honors Physics

Waves and Sound. Honors Physics Waves and Sound Honors Physics Simple Harmonic Motion Refers to repetitive, cyclical motion (like a pendulum or waves) Can be described with sine curve For a pendulum only T 2 L g Example problem The world

More information

Sound waves... light waves... water waves...

Sound waves... light waves... water waves... Sound waves... light waves... water waves... 1S-13 Slinky on Stand Creating longitudinal compression waves in a slinky What happens when you pull back and release one end of the slinky? 4/11/2011 Physics

More information

PHYSICS - GIANCOLI CALC 4E CH 15: WAVE MOTION.

PHYSICS - GIANCOLI CALC 4E CH 15: WAVE MOTION. !! www.clutchprep.com CONCEPT: WHAT IS A WAVE? A WAVE is a moving disturbance (oscillation) that carries energy. - A common example is a wave on a string, where the moving string carries energy We re only

More information

Chs. 16 and 17 Mechanical Waves

Chs. 16 and 17 Mechanical Waves Chs. 16 and 17 Mechanical Waves The nature of waves A wave is a traveling disturbance that carries energy from one place to another, and even though matter may be disturbed as a wave travels through a

More information

g L Agenda Chapter 13 Problem 28 Equations of Motion for SHM: What if we have friction or drag? Driven Oscillations; Resonance 4/30/14 k m f = 1 2π

g L Agenda Chapter 13 Problem 28 Equations of Motion for SHM: What if we have friction or drag? Driven Oscillations; Resonance 4/30/14 k m f = 1 2π Agenda Today: HW quiz, More simple harmonic motion and waves Thursday: More waves Midterm scores will be posted by Thursday. Chapter 13 Problem 28 Calculate the buoyant force due to the surrounding air

More information

Chapter # 08 Waves. [WAVES] Chapter # 08

Chapter # 08 Waves. [WAVES] Chapter # 08 Chapter # 08 Waves Q2) Write short answers of the following questions. i) What is the difference between progressive and stationary waves? Answer: Progressive Waves 1 Progressive waves are the result of

More information

The physicist's greatest tool is his wastebasket Albert Einstein

The physicist's greatest tool is his wastebasket Albert Einstein Chapter 20: Waves The physicist's greatest tool is his wastebasket Albert Einstein 2 20.1 Waves Describe transverse and longitudinal waves. Learn the properties of waves. Calculate the speed of a wave.

More information

Units of Chapter 14. Types of Waves Waves on a String Harmonic Wave Functions Sound Waves Standing Waves Sound Intensity The Doppler Effect

Units of Chapter 14. Types of Waves Waves on a String Harmonic Wave Functions Sound Waves Standing Waves Sound Intensity The Doppler Effect Units of Chapter 14 Types of Waves Waves on a String Harmonic Wave Functions Sound Waves Standing Waves Sound Intensity The Doppler Effect Units of Chapter 14 Optional Superposition and Interference Beats

More information

Waves Multiple Choice

Waves Multiple Choice Waves Multiple Choice PSI Physics Name: 1. The distance traveled by a wave in one period is called? A. Frequency B. Period C. Speed of wave D. Wavelength E. Amplitude 2. Which of the following is the speed

More information

Lesson 14: Simple harmonic motion, Waves (Sections )

Lesson 14: Simple harmonic motion, Waves (Sections ) Circular Motion and Simple Harmonic Motion The projection of uniform circular motion along any ais (the -ais here) is the same as simple harmonic motion. We use our understanding of uniform circular motion

More information

Define transverse waves and longitudinal waves. Draw a simple diagram of each

Define transverse waves and longitudinal waves. Draw a simple diagram of each AP Physics Study Guide Chapters 11, 12, 24 Waves, Sound, Light & Interference Name Write the equation that defines each quantity, include units for all quantities. wave speed-wavelength equation natural

More information

Mechanical Waves. Chapter 15. PowerPoint Lectures for University Physics, Thirteenth Edition Hugh D. Young and Roger A. Freedman

Mechanical Waves. Chapter 15. PowerPoint Lectures for University Physics, Thirteenth Edition Hugh D. Young and Roger A. Freedman Chapter 15 Mechanical Waves PowerPoint Lectures for University Physics, Thirteenth Edition Hugh D. Young and Roger A. Freedman Lectures by Wayne Anderson Goals for Chapter 15 To study the properties and

More information

Today: waves. Exam Results. Wave Motion. What is moving? Motion of a piece of the rope. Energy transport

Today: waves. Exam Results. Wave Motion. What is moving? Motion of a piece of the rope. Energy transport Exam: Exam scores posted on Learn@UW No homework due next week Exam Results D C BC B AB A Today: waves Have studied Newton s laws, motion of particles, momentum, energy, etc. Laws for describing things

More information

SPH3U Sec.9.2.notebook. November 30, Free End Reflections. Section 9.2 Waves at Media Boundaries

SPH3U Sec.9.2.notebook. November 30, Free End Reflections. Section 9.2 Waves at Media Boundaries Section 9.2 Waves at Media Boundaries Wave speed depends on some of the properties of the medium through which the wave is travelling. For example, the speed of sound in air depends on air temperature,

More information

Topic 4.4 Wave Characteristics (2 hours)

Topic 4.4 Wave Characteristics (2 hours) Topic 4.4 Wave Characteristics (2 hours) You must live in the present, launch yourself on every wave, find your eternity in each moment. Henry David Thoreau 1 What s a wave? A wave is a disturbance that

More information

Lecture Outline Chapter 14. Physics, 4 th Edition James S. Walker. Copyright 2010 Pearson Education, Inc.

Lecture Outline Chapter 14. Physics, 4 th Edition James S. Walker. Copyright 2010 Pearson Education, Inc. Lecture Outline Chapter 14 Physics, 4 th Edition James S. Walker Chapter 14 Waves and Sound Units of Chapter 14 Types of Waves Waves on a String Harmonic Wave Functions Sound Waves Sound Intensity The

More information

Introduction to Waves

Introduction to Waves Introduction to Waves 1 What s a wave? A wave is a disturbance that transfers energy from one place to another. The direction of energy transfer is the direction of propagation of the wave. 2 Transverse

More information

Exercises Vibration of a Pendulum (page 491) 25.2 Wave Description (pages ) 25.3 Wave Motion (pages )

Exercises Vibration of a Pendulum (page 491) 25.2 Wave Description (pages ) 25.3 Wave Motion (pages ) Exercises 25.1 Vibration of a Pendulum (page 491) 1. The time it takes for one back-and-forth motion of a pendulum is called the. 2. List the two things that determine the period of a pendulum. 3. Circle

More information

Slide 1 / The distance traveled by a wave in one period is called? Frequency Period Speed of wave Wavelength Amplitude

Slide 1 / The distance traveled by a wave in one period is called? Frequency Period Speed of wave Wavelength Amplitude Slide 1 / 20 1 The distance traveled by a wave in one period is called? Frequency Period Speed of wave Wavelength mplitude Slide 2 / 20 2 Which of the following is the speed of a wave traveling with a

More information

Waves-Wave Basics. 1. Which type of wave requires a material medium through which to travel? 1. sound 2. television 3. radio 4.

Waves-Wave Basics. 1. Which type of wave requires a material medium through which to travel? 1. sound 2. television 3. radio 4. Waves-Wave Basics 1. Which type of wave requires a material medium through which to travel? 1. sound 2. television 3. radio 4. x ray 2. A single vibratory disturbance moving through a medium is called

More information

Transverse waves cause particles to vibrate perpendicularly to the direction of the wave's motion (e.g. waves on a string, ripples on a pond).

Transverse waves cause particles to vibrate perpendicularly to the direction of the wave's motion (e.g. waves on a string, ripples on a pond). Waves Introduction A vibration must be the source of a wave. Waves in turn also cause vibrations. They are intrinsically connected. Waves transmit energy. There are different ways in which waves can be

More information

PHYSICS. Waves & Simple Harmonic Motion

PHYSICS. Waves & Simple Harmonic Motion PHYSICS Waves & Simple Harmonic Motion A repeating back-and-forth motion about an equilibrium position is a vibration. A disturbance that is transmitted progressively from one place to the next with no

More information

Exam Results, HW4 reminder. Wave Motion. Today: waves. What is moving? Motion of a piece of the rope. Exam Results. Average

Exam Results, HW4 reminder. Wave Motion. Today: waves. What is moving? Motion of a piece of the rope. Exam Results. Average Exam Results, HW4 reminder Exam: Class average = 14.1/20 ( at B/BC boundary) Exam scores posted this afternoon on Learn@UW Exam solutions will be posted on course web page HW3 (short) assigned at WileyPLUS

More information

Waves Mechanical Waves Amplitude Frequency / Period Wavelength Wave Phases Wave Speed : Wave Basics / Wave Properties

Waves Mechanical Waves Amplitude Frequency / Period Wavelength Wave Phases Wave Speed : Wave Basics / Wave Properties Waves Mechanical Waves Amplitude Frequency / Period Wavelength Wave Phases Wave Speed 13.1 : Wave Basics / Wave Properties Waves Medium A medium is the material, which a wave travels through (Solid, liquid,

More information

Ch13. Vibrations and Waves HW# 1, 5, 9, 13, 19, 29, 35, 37, 39, 41, 43, 47, 51, 53, 61

Ch13. Vibrations and Waves HW# 1, 5, 9, 13, 19, 29, 35, 37, 39, 41, 43, 47, 51, 53, 61 Ch13. Vibrations and Waves HW# 1, 5, 9, 13, 19, 29, 35, 37, 39, 41, 43, 47, 51, 53, 61 If you displace a system that obeys Hooke s Law, It will follow simple harmonic motion. The system will oscillate.

More information

Introduction. Strand E Unit 2: The Nature of Waves. Learning Objectives. Introduction.

Introduction. Strand E Unit 2: The Nature of Waves. Learning Objectives. Introduction. Learning Objectives At the end of this unit you should be able to Describe the main features of diffraction, refraction and reflection, and use the law of reflection. Describe how two progressive waves

More information

Sinusoidal Waves. Sinusoidal Waves. Sinusoidal Waves

Sinusoidal Waves. Sinusoidal Waves. Sinusoidal Waves Sinusoidal Waves A wave source at x = 0 that oscillates with simple harmonic motion (SHM) generates a sinusoidal wave. 2017 Pearson Education, Inc. Slide 16-1 Sinusoidal Waves Above is a history graph

More information

Harmonics and Sound Exam Review

Harmonics and Sound Exam Review Name: Class: _ Date: _ Harmonics and Sound Exam Review Multiple Choice Identify the letter of the choice that best completes the statement or answers the question. 1. Which of the following is not an example

More information

UNIT IV: SOUND AND LIGHT Chapter 25-31

UNIT IV: SOUND AND LIGHT Chapter 25-31 IMPORTANT TERMS: Amplitude Antinodes Blue shift Bow wave Constructive interference Crest Destructive interference Doppler effect Frequency Hertz In phase Interference pattern Longitudinal wave Node Out

More information

Waves Wave Characteristics

Waves Wave Characteristics Name: Date: Waves 4.4 Wave Characteristics. A transverse travelling wave has amplitude A 0 and wavelength λ. The distance between a crest and its neighbouring trough, measured in the direction of energy

More information

Doppler Effect. PHY132H1F Introduction to Physics II Class 3 Outline:

Doppler Effect. PHY132H1F Introduction to Physics II Class 3 Outline: PHY132H1F Introduction to Physics II Class 3 Outline: Doppler Effect Principle of Superposition Standing Waves on a String Standing Sound Waves Wave Interference Beats Survey: How did the reading go that

More information

Lecture 8. Sound Waves Superposition and Standing Waves

Lecture 8. Sound Waves Superposition and Standing Waves Lecture 8 Sound Waves Superposition and Standing Waves Sound Waves Speed of Sound Waves Intensity of Periodic Sound Waves The Doppler Effect Sound Waves are the most common example of longitudinal waves.

More information

Section 1 Types of Waves

Section 1 Types of Waves CHAPTER OUTLINE Section 1 Types of Waves Key Idea questions > What does a wave carry? > How are waves generated? > What is the difference between a transverse wave and a longitudinal wave? > How do the

More information

DEVIL PHYSICS THE BADDEST CLASS ON CAMPUS AP PHYSICS

DEVIL PHYSICS THE BADDEST CLASS ON CAMPUS AP PHYSICS DEVIL PHYSICS THE BADDEST CLASS ON CAMPUS AP PHYSICS LSN 11-7: WAVE MOTION LSN 11-8: TYPES OF WAVES; LONGITUDINAL AND TRANSVERSE LSN 11-9: ENERGY TRANSPORTED BY WAVES Physics of Waves Questions From Reading

More information

PHY 221: Wavefunction, Wave Superposition, Standing Waves on a String

PHY 221: Wavefunction, Wave Superposition, Standing Waves on a String PHY 221: Wavefunction, Wave Superposition, Standing Waves on a String Objective Write a mathematical function to describe the wave. Describe a transverse wave and a longitudinal wave. Describe frequency,

More information

Standing Waves in a String

Standing Waves in a String Standing Waves in a String OBJECTIVE To understand the circumstances necessary to produce a standing wave. To observe and define the quantities associated with a standing wave. To determine the wavelength

More information

CHAPTER 14 VIBRATIONS & WAVES

CHAPTER 14 VIBRATIONS & WAVES Physics Approximate Timeline Students are expected to keep up with class work when absent. CHAPTER 14 VIBRATIONS & WAVES Day Plans for the day Assignments for the day 1 Section 14.1 Periodic Motion o Definitions

More information

Questions. Background. Equipment. Activities LAB 3. WAVES

Questions. Background. Equipment. Activities LAB 3. WAVES Questions LAB 3. WAVES How can we measure the velocity of a wave? How are the wavelength, period, and speed of a wave related? What types of behavior do waves exhibit? Background Consider what happens

More information

4.4 WAVE CHARACTERISTICS 4.5 WAVE PROPERTIES Student Notes

4.4 WAVE CHARACTERISTICS 4.5 WAVE PROPERTIES Student Notes 4.4 WAVE CHARACTERISTICS 4.5 WAVE PROPERTIES Student Notes I. DIFFERENT TYPES OF WAVES A. TRANSVERSE AND LONGITUDINAL WAVES B. WAVE PULSES AND TRAVELLING WAVES C. SOUND AND WATER WAVES II. DEFINING TERMS

More information

Waves Physics Waves What is a wave and what does it carry? Types of Waves 1. Transverse

Waves Physics Waves What is a wave and what does it carry? Types of Waves 1. Transverse Waves Physics 20.1 Waves What is a wave and what does it carry? Types of Waves 1. Transverse A transverse wave has its oscillations/vibrations to the direction the wave moves. 2. Longitudinal A longitudinal

More information

Traveling Waves vs. Standing Waves

Traveling Waves vs. Standing Waves The Physics Classroom» Physics Tutorial» Waves» Traveling Waves vs. Standing Waves Waves - Lesson 4 - Standing Waves Traveling Waves vs. Standing Waves Traveling Waves vs. Standing Waves Formation of Standing

More information

Defined as a transfer of energy, in the form of a temporary disturbance of a medium, where the medium itself does not move.

Defined as a transfer of energy, in the form of a temporary disturbance of a medium, where the medium itself does not move. Waves: Defined as a transfer of energy, in the form of a temporary disturbance of a medium, where the medium itself does not move. Three Classifications of waves: 1. Mechanical waves: These are waves that

More information

Similarly to elastic waves, sound and other propagated waves are graphically shown by the graph:

Similarly to elastic waves, sound and other propagated waves are graphically shown by the graph: Phys 300/301 Physics: Algebra/Trig Eugene Hecht, 3e. Prepared 01/24/06 11.0 Waves & Sounds There are two fundamental waves of transporting energy and momentum: particles and waves. While they seem opposites,

More information

Section 1: Types of Waves

Section 1: Types of Waves Waves Section 1 Section 1: Types of Waves Preview Key Ideas Bellringer What Is a Wave? Vibrations and Waves Transverse and Longitudinal Waves Surface Waves Waves Section 1 Key Ideas What does a wave carry?

More information

23.1 Period and Frequency

23.1 Period and Frequency 23.1 Period and Frequency 23.1 The period of a pendulum is the time it takes to move through one cycle. As the ball on the string is pulled to one side and then let go, the ball moves to the side opposite

More information

Waves-Wave Basics. 1. Which type of wave requires a material medium through which to travel? 1. sound 2. television 3. radio 4.

Waves-Wave Basics. 1. Which type of wave requires a material medium through which to travel? 1. sound 2. television 3. radio 4. 1. Which type of wave requires a material medium through which to travel? 1. sound 2. television 3. radio 4. x ray 2. A single vibratory disturbance moving through a medium is called 1. a node 2. an antinode

More information

a wave is a rhythmic disturbance that carries/transfers energy through matter or space A repeating movement

a wave is a rhythmic disturbance that carries/transfers energy through matter or space A repeating movement a wave is a rhythmic disturbance that carries/transfers energy through matter or space A repeating movement Mechanical Waves require a medium medium: the matter through which a wave travels examples: water,

More information

Chapters 25: Waves. f = 1 T. v =!f. Text: Chapter 25 Think and Explain: 1-10 Think and Solve: 1-4

Chapters 25: Waves. f = 1 T. v =!f. Text: Chapter 25 Think and Explain: 1-10 Think and Solve: 1-4 Text: Chapter 25 Think and Explain: 1-10 Think and Solve: 1-4 Chapters 25: Waves NAME: Vocabulary: wave, pulse, oscillation, amplitude, wavelength, wave speed, frequency, period, interference, constructive,

More information

Chapter 16. Waves-I Types of Waves

Chapter 16. Waves-I Types of Waves Chapter 16 Waves-I 16.2 Types of Waves 1. Mechanical waves. These waves have two central features: They are governed by Newton s laws, and they can exist only within a material medium, such as water, air,

More information

Core Concept. PowerPoint Lectures Physical Science, 8e. Chapter 5 Wave Motions and Sound. New Symbols for this Chapter 2/20/2011

Core Concept. PowerPoint Lectures Physical Science, 8e. Chapter 5 Wave Motions and Sound. New Symbols for this Chapter 2/20/2011 PowerPoint Lectures Physical Science, 8e Chapter 5 Wave Motions and Sound New Symbols for this Chapter T-Period f-frequency v-wave speed λ-wavelength A-Amplitude Sound is transmitted as increased and decreased

More information

Section 1 Types of Waves. Distinguish between mechanical waves and electromagnetic waves.

Section 1 Types of Waves. Distinguish between mechanical waves and electromagnetic waves. Section 1 Types of Waves Objectives Recognize that waves transfer energy. Distinguish between mechanical waves and electromagnetic waves. Explain the relationship between particle vibration and wave motion.

More information

Practice Problems For 1st Wave Exam

Practice Problems For 1st Wave Exam For 1st Wave Exam 1. Which wave diagram has both wavelength ( ) and amplitude (A) labeled correctly? A) B) C) 5. The energy of a sound wave is most closely related to the wave's A) frequency B) amplitude

More information

Physics 1-2 Mr. Chumbley Physics: Chapter 11 p

Physics 1-2 Mr. Chumbley Physics: Chapter 11 p Physics 1-2 Mr. Chumbley Physics: Chapter 11 p. 362-401 Section 1 p. 364 371 Section 2 p. 372-377 Simple Harmonic Motion There exist many different situations in which objects oscillate in regular, repeating

More information

Practice Questions: Waves (AP Physics 1) Multiple Choice Questions:

Practice Questions: Waves (AP Physics 1) Multiple Choice Questions: Practice Questions: Waves (AP Physics 1) Multiple Choice Questions: 28. A transverse wave is traveling on a string. The graph above shows position as a function of time for a point on the string. If the

More information

PHYSICS - CLUTCH CH 16: WAVES & SOUND.

PHYSICS - CLUTCH CH 16: WAVES & SOUND. !! www.clutchprep.com CONCEPT: WHAT IS A WAVE? A WAVE is a moving disturbance (oscillation) that carries energy. - A common example is a wave on a string, where the moving string carries energy We re only

More information

CHAPTER 8: MECHANICAL WAVES TRANSMIT ENERGY IN A VARIETY OF WAYS

CHAPTER 8: MECHANICAL WAVES TRANSMIT ENERGY IN A VARIETY OF WAYS CHAPTER 8: MECHANICAL WAVES TRANSMIT ENERGY IN A VARIETY OF WAYS DISCLAIMER FOR MOST QUESTIONS IN THIS CHAPTER Waves are always in motion, as they transmit energy and information from one point to another.

More information

Unit 2. The Nature of Waves

Unit 2. The Nature of Waves Strand E. Waves Unit 2. The ature of Waves Contents Page Superposition and Interference 2 Stationary Waves 7 Reflection, Diffraction and Refraction 12 Strand E Unit 2: The ature of Waves E.2.1. Interference

More information

Cover Sheet-Block 6 Wave Properties

Cover Sheet-Block 6 Wave Properties Cover Sheet-Block 6 Wave Properties Name Standards-Physics 4 a b c d 4a. Students know waves carry energy from one place to another. 4. b. Students know how to identify transverse and longitudinal waves

More information

CHAPTER 10 WAVES. Section 10.1 Types of Waves

CHAPTER 10 WAVES. Section 10.1 Types of Waves CHAPTER 10 WAVES Section 10.1 Types of Waves What does a wave carry? How are waves generated? What is the difference between a transverse wave and a longitudinal waves? How do the particles in ocean waves

More information

Chapter 19: Vibrations And Waves

Chapter 19: Vibrations And Waves Lecture Outline Chapter 19: Vibrations And Waves This lecture will help you understand: Vibrations of a Pendulum Wave Description Wave Speed Transverse Waves Longitudinal Waves Wave Interference Standing

More information

i-clicker Discussion Question

i-clicker Discussion Question PHY132 Introduction to Physics II Class Class 3 Outline: Outline: Ch. 21, sections 21.1-21.4 The Principle of Superposition Standing Waves Nodes and Antinodes Musical Instruments QuickCheck 1.1 i-clicker

More information

i-clicker Discussion Question

i-clicker Discussion Question PHY132 Introduction to Physics II Class Class 3 Outline: Outline: Ch. 21, sections 21.1-21.4 The Principle of Superposition Standing Waves Nodes and Antinodes Musical Instruments QuickCheck 1.1 i-clicker

More information

Physics 1C. Lecture 12C. "Fluctuat nec mergitur. = She is swayed by the waves but does not sink." --Motto of the city of Paris

Physics 1C. Lecture 12C. Fluctuat nec mergitur. = She is swayed by the waves but does not sink. --Motto of the city of Paris Physics 1C Lecture 12C "Fluctuat nec mergitur. = She is swayed by the waves but does not sink." --Motto of the city of Paris Outline Homework is intended for practice and preparation It is the basis for

More information

Parts of Longitudinal Waves A compression

Parts of Longitudinal Waves A compression 1 Waves All substantive material is from Wave Motion and Sound by James Dann. http://www.ck12.org/flexr/ unless otherwise noted. Illustrations are copyright free. Objects in motion that return to the same

More information

Waves. Mechanical Waves A disturbance in matter that carries energy from one place to another.

Waves. Mechanical Waves A disturbance in matter that carries energy from one place to another. 17.2 - Waves Waves Mechanical Waves A disturbance in matter that carries energy from one place to another. Medium The material through which a wave travels. Medium can be any three states of matter: solid,

More information

Waves. Kevin Small or

Waves. Kevin Small   or Waves Opening note: X-rays can penetrate your body. Sound waves can make thinks vibrate; water waves can knock you over in the sea. Infrared waves can warm you up and slinky waves are fun to play with.

More information

Wave a repeating disturbance or movement that transfers energy through matter or space

Wave a repeating disturbance or movement that transfers energy through matter or space Waves The Nature of Waves Wave a repeating disturbance or movement that transfers energy through matter or space 1. Molecules pass energy on to neighboring molecules. 2. Waves carry energy without transporting

More information

Vibrations and Waves Physics 5 th 6wks

Vibrations and Waves Physics 5 th 6wks Vibrations and Waves Physics 5 th 6wks Waves & Vibration: Introduction Vibration a repeated back-and-forth motion, around a fixed position. (a wiggle in time) Wave a rhythmic disturbance that transfers

More information

Physics 11. Unit 7 (Part 1) Wave Motion

Physics 11. Unit 7 (Part 1) Wave Motion Physics 11 Unit 7 (Part 1) Wave Motion 1. Introduction to wave Wave motion is a popular phenomenon that we observe often in our daily lives. For example, light waves, sound waves, radio waves, water waves,

More information

Wave. 1. Transverse 2. Longitudinal 3. Standing

Wave. 1. Transverse 2. Longitudinal 3. Standing Wave Wave: A disturbance traveling through a medium by which energy is transferred from one particle of the medium to another without causing any permanent displacementof the medium itself. (A Wave Transports

More information

Physics Waves & Sound

Physics Waves & Sound Read Page 298 (Wave Characteristics) TQ1. How is a pulse different from a wave? Physics Waves & Sound Day 1 TQ2. What actually moves down a slinky when in the form of a wave? TQ3. What two things happen

More information

Characteristics of Waves

Characteristics of Waves Chapter 15 Characteristics of Waves Waves disturbances that carry energy through matter or space Waves transfer energy. The energy being transferred may spread out as waves travel. Characteristics of Waves

More information

SECTION 1 & 2 WAVES & MECHANICAL WAVES

SECTION 1 & 2 WAVES & MECHANICAL WAVES WAVES!!!! SECTION 1 & 2 WAVES & MECHANICAL WAVES What is a Wave? A wave is a disturbance that travels through space or matter. When undisturbed, the water is found in its equilibrium or rest position.

More information

Waves Practice Problems AP Physics In a wave, the distance traveled by a wave during one period is called:

Waves Practice Problems AP Physics In a wave, the distance traveled by a wave during one period is called: Waves Practice Problems AP Physics 1 Name 1. In a wave, the distance traveled by a wave during one period is called: (A) Amplitude (B) Frequency (C) Wavelength (D) Displacement 2. A stretched wire resonates

More information

17.1: Mechanical Waves

17.1: Mechanical Waves New Standard SPS9: Students will investigate the properties of waves. a. Recognize that all waves transfer energy. b. Relate frequency and wavelength to the energy of different types of electromagnetic

More information

Section 4.2. Travelling Waves

Section 4.2. Travelling Waves Section 4.2 Travelling Waves Wave Motion A wave is the motion of a disturbance Mechanical waves require Some source of disturbance A medium that can be disturbed Some physical connection between or mechanism

More information

CHAPTER 16. Waves and Sound

CHAPTER 16. Waves and Sound CHAPTER 16 Waves and Sound Objectives: After completion of this module, you should be able to: Demonstrate your understanding of transverse and longitudinal waves. Define, relate and apply the concepts

More information

Lab 2: Superposition of waves on a string

Lab 2: Superposition of waves on a string Lab 2: Superposition of waves on a string Name: Group Members: Date: TA s Name: Apparatus: PASCO mechanical vibrator, PASCO interface, string, mass hanger (50 g) and set of masses, meter stick, electronic

More information

is shown in Fig. 5.1.

is shown in Fig. 5.1. 1 The variation with time t of the displacement x of a point in a transverse wave T 1 is shown in Fig. 5.1. 1 x A T 1 1 2 3 4 5 6 t/s -A Fig. 5.1 (a) By reference to displacement and direction of travel

More information

25 Vibrations and Waves. Waves transmit energy through space and time.

25 Vibrations and Waves. Waves transmit energy through space and time. Waves transmit energy through space and time. A repeating back-andforth motion about an equilibrium position is a vibration. A disturbance that is transmitted progressively from one place to the next with

More information

Longitudinal waves: Part 1

Longitudinal waves: Part 1 OpenStax-CNX module: m39032 1 Longitudinal waves: Part 1 * Free High School Science Texts Project This work is produced by OpenStax-CNX and licensed under the Creative Commons Attribution License 3.0 1

More information