Damping and resonance Edexcel International A Level Physics revision
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In plain words
Push a swing once and it gradually dies away: friction is draining its energy. That is damping. But give it a little push at just the right moment on every swing and it climbs higher and higher. That is resonance, and it is why soldiers break step when they cross a bridge.
5 things to know
- A free oscillation happens at the system's own natural frequency, with no driving force. A forced oscillation is driven by a periodic force, and happens at the frequency of the driver.
- Damping: resistive forces take energy from an oscillator, so its amplitude falls. Light damping: the amplitude dies away gradually over many oscillations. Critical damping: the system returns to rest in the shortest possible time without oscillating. Heavy damping: it returns slowly, without oscillating.
- Resonance: the amplitude of a forced oscillation is greatest when the driving frequency equals the natural frequency. That is when energy is passed from the driver to the oscillator most effectively.
- More damping makes the resonance peak lower and broader.
- The energy removed by damping ends up as thermal energy. Ductile materials that deform plastically absorb energy and cut down the amplitude, which is used to protect buildings in earthquakes.
Tips and tricks
- On a graph of amplitude against driving frequency, light damping gives a tall, sharp peak at the natural frequency.
- Car suspension is close to critically damped, so the car settles quickly after a bump without bouncing.
It lands in your notebook with its questions as flashcards.
Damping and resonance: 5 questions and answers
These are the quiz’s questions. Do the quiz first, then come back here for the ones that got you.
When does resonance happen?
The driver then feeds energy in most effectively.
What is critical damping?
It is what a car's suspension aims for.
What happens to the amplitude of a lightly damped oscillator over time?
Each oscillation loses a little energy.
The damping on a driven oscillator is increased. What happens to its resonance peak?
More energy is removed on each cycle.
At what frequency does a forced oscillation happen?
The system is made to follow the driver.
Quiz
5 questions
Tap an answer and you’ll see straight away whether it’s right, and why.
Worksheet
4 questions, 9 marks. Write your answers on paper, then check them.
Damping and resonance
Edexcel International A Level Physics WPH · 9 marks · papermunch.org
Name ______________________________ Date ______________
State what is meant by resonance.[2]
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The amplitude of a forced oscillation reaches a maximum when the driving frequency equals the natural frequency of the system.
Describe how the graph of amplitude against driving frequency changes when the damping is increased.[3]
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The peak becomes lower and broader, so the greatest amplitude is smaller, and the peak moves to a slightly lower frequency.
State the difference between a free oscillation and a forced oscillation.[2]
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A free oscillation has no driving force and happens at the natural frequency of the system. A forced oscillation is kept going by a periodic driving force, and happens at the frequency of that force.
Give one example where resonance is useful and one where it is a problem.[2]
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Useful: tuning a radio circuit, or the air in a musical instrument. A problem: a bridge or building shaken at its natural frequency by wind, footsteps or an earthquake.
Answers: Damping and resonance
- 1. The amplitude of a forced oscillation reaches a maximum when the driving frequency equals the natural frequency of the system.
- 2. The peak becomes lower and broader, so the greatest amplitude is smaller, and the peak moves to a slightly lower frequency.
- 3. A free oscillation has no driving force and happens at the natural frequency of the system. A forced oscillation is kept going by a periodic driving force, and happens at the frequency of that force.
- 4. Useful: tuning a radio circuit, or the air in a musical instrument. A problem: a bridge or building shaken at its natural frequency by wind, footsteps or an earthquake.



