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  • Observe the vibrations of a guitar string.
  • Determine the frequency of oscillations.
The given figure shows a closed zoom view of the strings of a guitar. There are two slanting white colored strings in the picture. In the nearer string, the gaps between the circular threads of the string are visible, whereas the second white string at the back looks like a white thin stick.
The strings on this guitar vibrate at regular time intervals. (credit: JAR)

When you pluck a guitar string, the resulting sound has a steady tone and lasts a long time. Each successive vibration of the string takes the same time as the previous one. We define periodic motion    to be a motion that repeats itself at regular time intervals, such as exhibited by the guitar string or by an object on a spring moving up and down. The time to complete one oscillation remains constant and is called the period     T size 12{T} {} . Its units are usually seconds, but may be any convenient unit of time. The word period refers to the time for some event whether repetitive or not; but we shall be primarily interested in periodic motion, which is by definition repetitive. A concept closely related to period is the frequency of an event. For example, if you get a paycheck twice a month, the frequency of payment is two per month and the period between checks is half a month. Frequency f size 12{f} {} is defined to be the number of events per unit time. For periodic motion, frequency is the number of oscillations per unit time. The relationship between frequency and period is

f = 1 T . size 12{f= { {1} over {T} } } {}

The SI unit for frequency is the cycle per second , which is defined to be a hertz (Hz):

1 Hz = 1 cycle sec or 1 Hz = 1 s size 12{1`"Hz"=1` { {"cycle"} over {"sec"} } ``"or 1 Hz"= { {1} over {s} } } {}

A cycle is one complete oscillation. Note that a vibration can be a single or multiple event, whereas oscillations are usually repetitive for a significant number of cycles.

Determine the frequency of two oscillations: medical ultrasound and the period of middle c

We can use the formulas presented in this module to determine both the frequency based on known oscillations and the oscillation based on a known frequency. Let’s try one example of each. (a) A medical imaging device produces ultrasound by oscillating with a period of 0.400 µs. What is the frequency of this oscillation? (b) The frequency of middle C on a typical musical instrument is 264 Hz. What is the time for one complete oscillation?

Strategy

Both questions (a) and (b) can be answered using the relationship between period and frequency. In question (a), the period T size 12{T} {} is given and we are asked to find frequency f size 12{f} {} . In question (b), the frequency f size 12{f} {} is given and we are asked to find the period T size 12{T} {} .

Solution a

  1. Substitute 0 . 400 μ s size 12{0 "." "400"`"μs"} {} for T size 12{T} {} in f = 1 T size 12{f= { {1} over {T} } } {} :
    f = 1 T = 1 0 . 400 × 10 6 s . size 12{f= { {1} over {T} } = { {1} over {0 "." "400" times "10" rSup { size 8{ - 6} } s} } } {}

    Solve to find

    f = 2 . 50 × 10 6 Hz . size 12{f=2 "." "50" times " 10" rSup { size 8{6} } "Hz"} {}

Discussion a

The frequency of sound found in (a) is much higher than the highest frequency that humans can hear and, therefore, is called ultrasound. Appropriate oscillations at this frequency generate ultrasound used for noninvasive medical diagnoses, such as observations of a fetus in the womb.

Solution b

  1. Identify the known values:

    The time for one complete oscillation is the period T size 12{T} {} :

    f = 1 T . size 12{f= { {1} over {T} } } {}
  2. Solve for T size 12{T} {} :
    T = 1 f . size 12{T= { {1} over {f} } } {}
  3. Substitute the given value for the frequency into the resulting expression:
    T = 1 f = 1 264 Hz = 1 264 cycles/s = 3 . 79 × 10 3 s = 3 . 79 ms . size 12{T= { {1} over {f} } = { {1} over {"264"" Hz"} } = { {1} over {"264"" cycles/s"} } =3 "." "79" times "10" rSup { size 8{ - 3} } s=3 "." "79"" ms"} {}

Discussion

The period found in (b) is the time per cycle, but this value is often quoted as simply the time in convenient units (ms or milliseconds in this case).

Identify an event in your life (such as receiving a paycheck) that occurs regularly. Identify both the period and frequency of this event.

I visit my parents for dinner every other Sunday. The frequency of my visits is 26 per calendar year. The period is two weeks.

Section summary

  • Periodic motion is a repetitious oscillation.
  • The time for one oscillation is the period T size 12{T} {} .
  • The number of oscillations per unit time is the frequency f size 12{f} {} .
  • These quantities are related by
    f = 1 T . size 12{f= { {1} over {T} } } {}

Problems&Exercises

What is the period of 60 . 0 Hz size 12{"60" "." 0`"Hz"} {} electrical power?

16.7 ms

If your heart rate is 150 beats per minute during strenuous exercise, what is the time per beat in units of seconds?

0.400 s / beats

Find the frequency of a tuning fork that takes 2 . 50 × 10 3 s size 12{2 "." "50" times "10" rSup { size 8{ - 3} } s} {} to complete one oscillation.

400 Hz

A stroboscope is set to flash every 8 . 00 × 10 5 s size 12{8 "." "00" times "10" rSup { size 8{ - 5} } `s} {} . What is the frequency of the flashes?

12,500 Hz

A tire has a tread pattern with a crevice every 2.00 cm. Each crevice makes a single vibration as the tire moves. What is the frequency of these vibrations if the car moves at 30.0 m/s?

1.50 kHz

Engineering Application

Each piston of an engine makes a sharp sound every other revolution of the engine. (a) How fast is a race car going if its eight-cylinder engine emits a sound of frequency 750 Hz, given that the engine makes 2000 revolutions per kilometer? (b) At how many revolutions per minute is the engine rotating?

(a) 93.8 m/s

(b) 11 . 3 × 10 3 rev/min size 12{"11" "." 3 times "10" rSup { size 8{3} } `"rev/min"} {}

Questions & Answers

A golfer on a fairway is 70 m away from the green, which sits below the level of the fairway by 20 m. If the golfer hits the ball at an angle of 40° with an initial speed of 20 m/s, how close to the green does she come?
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can someone explain to me, an ignorant high school student, why the trend of the graph doesn't follow the fact that the higher frequency a sound wave is, the more power it is, hence, making me think the phons output would follow this general trend?
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Nevermind i just realied that the graph is the phons output for a person with normal hearing and not just the phons output of the sound waves power, I should read the entire thing next time
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"Generation of electrical energy from sound energy | IEEE Conference Publication | IEEE Xplore" ***ieeexplore.ieee.org/document/7150687?reload=true
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Source:  OpenStax, College mechanics. OpenStax CNX. Dec 29, 2012 Download for free at http://legacy.cnx.org/content/col11477/1.1
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