Figure 1 shows a bat and its prey. The bat emits a high frequency sound pulse to locate its prey. The speed of sound in air is 330 m/s. (a) The wavelength of the sound is 11 mm. Calculate the frequency of the sound. Use the equation v = f × λ (b) The pulse returns to the bat after a time of 18 ms. Calculate the distance from the bat to its prey. (Total for Question 1 = 6 marks)

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Figure 1 shows a bat and its prey - Edexcel - GCSE Physics - Question 1 - 2023 - Paper 1

Question 1

Figure 1 shows a bat and its prey. The bat emits a high frequency sound pulse to locate its prey. The speed of sound in air is 330 m/s. (a) The wavelength of the s... show full transcript

Worked Solution & Example Answer:Figure 1 shows a bat and its prey - Edexcel - GCSE Physics - Question 1 - 2023 - Paper 1

Step 1

Calculate the frequency of the sound.

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Answer

To find the frequency of the sound, we will use the formula:

$v = f × λ$

Where:

v is the speed of sound (330 m/s)
f is the frequency (in Hz)
λ is the wavelength (11 mm or $11 × 10^{-3}$ m)

Substituting the values, we rearrange the equation to find f:

$f = \frac{v}{λ} = \frac{330}{11 × 10^{-3}}$

Calculating this gives:

$f = 30000 \text{ Hz}$

Step 2

Calculate the distance from the bat to its prey.

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Answer

The total time for the sound pulse to travel to the prey and back is 18 ms (or $18 × 10^{-3}$ s). Therefore, the time taken to reach the prey is half of this time:

$t = \frac{18 × 10^{-3}}{2} = 9 × 10^{-3} \text{ s}$

Using the formula for distance, which is given by:

$ext{distance} = v × t$

Substituting the known values:

$\text{distance} = 330 \text{ m/s} × 9 × 10^{-3} \text{ s}$

Calculating this gives:

$\text{distance} = 2.97 \text{ m}$

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