Lesson T4.1.3

T4.1.3 Echoes and hearing range Quiz: KS3 Physics, Unit 4

20 questions

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Lesson T4.1.3, Echoes and hearing range: 20 multiple choice questions for the KS3 Physics (National Curriculum), Unit 4: Waves, written with Revision Ninja.

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The 20 questions

  1. What is an echo?

    • A sound wave that is reflected back to the listener from a surface.
    • A sound wave that travels through the ground only and never reaches the listener in the air.
    • A sound wave that is absorbed completely by a surface so that nothing is heard back at all.
    • A light wave that bounces back from a mirror and reaches the eye of the listener quickly.
  2. Why is an echo heard after a short delay?

    • The sound is slowed down by the surface it hits, which delays it on its way back to the ears.
    • The listener's ears take time to process the sound, which delays the echo by a fraction of a second.
    • Echoes are made by a second sound that starts later, which arrives after the first has finished.
    • The sound has to travel to the reflecting surface and back to the listener.
  3. A sound reflects off a wall 170 m away. How long after the sound is made is the echo heard? (Speed of sound is 340 m/s)

    • 1 second
    • 340 seconds, which divides the speed by the distance instead of dividing the distance by the speed
    • 2 seconds, which doubles the time because the sound travels to the wall twice over
    • 0.5 seconds, which uses only the distance to the wall and forgets the return journey
  4. A person shouts and hears an echo 2 seconds later. How far away is the reflecting wall? (Speed of sound is 340 m/s)

    • 170 m, which is the distance travelled by the sound in one direction only and is correct only without the trip back
    • 85 m, which is found by dividing the round trip distance by the speed of the sound
    • 340 m
    • 680 m, which is the total round trip distance and forgets that the wall is only half of it
  5. Which of these surfaces is most likely to produce a clear echo?

    • A carpeted room with soft furnishings, which takes in most of the sound it meets as it goes
    • A pile of loose cushions, which soaks up the sound energy and gives a dull, muffled effect
    • A thick, soft curtain, which absorbs most of the sound rather than reflecting it back
    • A smooth, hard wall
  6. What is meant by sound being absorbed?

    • The sound energy is taken in by the material and is not reflected back.
    • The sound changes into a light wave on the surface, which is then seen rather than heard.
    • The sound speeds up as it passes through the material, which lets it arrive earlier at the ear.
    • The sound is reflected back at a bigger volume, so the material makes the sound louder again.
  7. Why do concert halls have curtains and soft seats?

    • They make the sound travel more slowly through the hall, so the music lasts longer for listeners.
    • They absorb sound, reducing unwanted echoes and reverberation.
    • They reflect all sound back to the stage, which makes the performers easier to hear clearly.
    • They add extra sound energy to the hall, which makes the music sound fuller to the audience.
  8. An echo is heard 4 seconds after a shout. How far away is the reflecting surface? (Speed of sound is 340 m/s)

    • 1360 m, which is the total round trip distance and forgets that the surface is only half of it
    • 340 m, which is the distance the sound travels in one second and ignores the four seconds given
    • 85 m, which divides the round trip distance by the speed of the sound rather than multiplying
    • 680 m
  9. What is the approximate range of hearing for most adult humans?

    • About 1000 Hz to 100 000 Hz, which covers mainly the high sounds and misses the low range
    • About 1 Hz to 1000 Hz, which covers only the low sounds and misses the upper range of hearing
    • About 2 Hz to 200 Hz, which covers only the very lowest rumbles and misses most of the range
    • About 20 Hz to 20 000 Hz
  10. Which animal can hear sounds at frequencies higher than humans can hear?

    • A tortoise, which has very poor hearing and cannot pick up many of the sounds humans hear
    • A cow, which hears a narrower range of sounds than humans do at most frequencies
    • A dog
    • A snail, which has no ears at all and detects sound only through vibrations in the ground
  11. Why do bats use echoes?

    • They hear sounds so low that the echoes are invisible to the human ear and the bat alike.
    • They absorb the echoes to make their voices louder, which helps them call to other bats.
    • They use echoes to heat their wings, which keeps them warm during the flight through the night.
    • They send out high-frequency sounds and use the returning echoes to locate objects.
  12. Why might a sound seem to fade in a large empty hall?

    • The sound is spread out and some of its energy is absorbed by the walls and air.
    • The sound turns into light as it spreads out, which causes the listener to see rather than hear it.
    • Sound becomes heavier in a large space and falls to the floor, so less of it reaches the listener.
    • The sound is reflected back and forth so it gets louder, which makes the hall ring out more.
  13. What must a listener be able to do to hear an echo as a separate sound?

    • Hear the original sound and then the reflected one after a noticeable delay.
    • Hear only sounds with frequencies below 20 Hz, because the echo is too high to be picked up.
    • Stand in the middle of the room with their eyes closed, which lets them focus on the sound alone.
    • Hear the original and reflected sounds at exactly the same time, so they blend into one sound.
  14. Which of these is a good use of ultrasound?

    • Sending radio programmes across the country, which needs high frequency sound to travel far
    • Heating food in a microwave oven, which uses high frequency energy to warm the food quickly
    • Making a loud whistle that a dog can hear, which uses ultrasound to call the dog from afar
    • Cleaning jewellery and scanning babies in the womb
  15. A boat sends a sound pulse down to the seabed and receives the echo 0.5 s later. How deep is the seabed here? (Speed of sound in water is about 1500 m/s)

    • 375 m
    • 750 m, which forgets to halve the round trip distance covered by the pulse to the seabed
    • 187.5 m, which halves the round trip distance a second time after it has already been halved
    • 3000 m, which is found by multiplying the speed by the time and then by the number of trips
  16. What is the minimum distance to a reflecting wall needed to hear a separate echo, if the echo must be heard 0.1 s after the sound is made? (Speed of sound is 340 m/s)

    • About 17 m
    • About 170 m, which assumes that the echo delay should be one second rather than a tenth
    • About 34 m, which forgets to halve the round trip distance covered by the sound
    • About 1.7 m, which divides the round trip distance by ten instead of by two
  17. Which of these is an example of sound being reflected?

    • Feeling a bass drum vibrating in your chest as it is struck during a concert on stage
    • Hearing a whisper only when you stand right next to the speaker who is making the sound
    • Hearing your own voice bounce back from a cliff face
    • Hearing a radio through a thick brick wall, where the sound is absorbed by the bricks
  18. Why does a swimming pool with tiled walls sound echoey?

    • Water stops all sound from being reflected by the walls, so the echoes build up in the air
    • Tiles absorb sound and turn it into light energy that the swimmers can see on the walls
    • Tiles make sound travel slower so that it lingers in the air for a long time after it is made
    • Hard tiles reflect sound strongly, so many echoes overlap.
  19. An echo returns 0.8 s after a sound is made and reflects off a cliff 136 m away. What speed of sound does this imply? (Round trip is 272 m)

    • 340 m/s
    • 170 m/s, which uses only the one-way distance to the cliff and so halves the true speed
    • 272 m/s, which uses the round trip distance directly and does not divide by the time taken
    • 1360 m/s, which divides the round trip by the time and then multiplies the result by four
  20. Which material is best for reducing echoes in a cinema?

    • Bare steel panels, which reflect most of the sound back into the room for every listener
    • Heavy fabric covering the walls and seats
    • Polished marble, which reflects sound strongly from its smooth surface across the whole room
    • Sheets of clear glass, which reflect sound clearly to every corner of the cinema auditorium

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