Wave and Wave characteristics
WAVES

172157 Consider following statements.

1 A, B, C are correct
2 Only B and C are correct
3 Only A and B are correct
4 Only A and C are correct
WAVES

172276 Identify the correct statement about a stationary wave.

1 Stationary wave is formed by superposition of two waves of different frequencies
2 The energy of oscillation is minimum at the antinode
3 Amplitude at the antinode is the same as that at the node
4 The pressure change is least at the antinode
WAVES

172289 If the velocity of sound in air is $300 \mathrm{~m} / \mathrm{s}$, then the distance between two successive nodes of a stationary wave of frequency $1000 \mathrm{~Hz}$ is

1 $10 \mathrm{~cm}$
2 $20 \mathrm{~cm}$
3 $15 \mathrm{~cm}$
4 $30 \mathrm{~cm}$
WAVES

172314 The frequency of sinusoidal wave, 0.40 cos $(2000t+0.80)$ would be

1 $1000 \pi \mathrm{Hz}$
2 $2000 \mathrm{~Hz}$
3 $20 \mathrm{~Hz}$
4 $\frac{1000}{\pi} \mathrm{Hz}$
WAVES

172317 A hospital uses an ultrasonic scanner to locate tumours in a tissue. The operating frequency of the scanner is 4.2 MHz. The speed of sound in a tissue is $1.7 \mathrm{~km} / \mathrm{s}$. The wavelength of sound in tissue is close to

1 $4 \times 10^{-4}$
2 $8 \times 10^{-4}$
3 $4 \times 10^{-3}$
4 $8 \times 10^{-3}$
WAVES

172157 Consider following statements.

1 A, B, C are correct
2 Only B and C are correct
3 Only A and B are correct
4 Only A and C are correct
WAVES

172276 Identify the correct statement about a stationary wave.

1 Stationary wave is formed by superposition of two waves of different frequencies
2 The energy of oscillation is minimum at the antinode
3 Amplitude at the antinode is the same as that at the node
4 The pressure change is least at the antinode
WAVES

172289 If the velocity of sound in air is $300 \mathrm{~m} / \mathrm{s}$, then the distance between two successive nodes of a stationary wave of frequency $1000 \mathrm{~Hz}$ is

1 $10 \mathrm{~cm}$
2 $20 \mathrm{~cm}$
3 $15 \mathrm{~cm}$
4 $30 \mathrm{~cm}$
WAVES

172314 The frequency of sinusoidal wave, 0.40 cos $(2000t+0.80)$ would be

1 $1000 \pi \mathrm{Hz}$
2 $2000 \mathrm{~Hz}$
3 $20 \mathrm{~Hz}$
4 $\frac{1000}{\pi} \mathrm{Hz}$
WAVES

172317 A hospital uses an ultrasonic scanner to locate tumours in a tissue. The operating frequency of the scanner is 4.2 MHz. The speed of sound in a tissue is $1.7 \mathrm{~km} / \mathrm{s}$. The wavelength of sound in tissue is close to

1 $4 \times 10^{-4}$
2 $8 \times 10^{-4}$
3 $4 \times 10^{-3}$
4 $8 \times 10^{-3}$
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WAVES

172157 Consider following statements.

1 A, B, C are correct
2 Only B and C are correct
3 Only A and B are correct
4 Only A and C are correct
WAVES

172276 Identify the correct statement about a stationary wave.

1 Stationary wave is formed by superposition of two waves of different frequencies
2 The energy of oscillation is minimum at the antinode
3 Amplitude at the antinode is the same as that at the node
4 The pressure change is least at the antinode
WAVES

172289 If the velocity of sound in air is $300 \mathrm{~m} / \mathrm{s}$, then the distance between two successive nodes of a stationary wave of frequency $1000 \mathrm{~Hz}$ is

1 $10 \mathrm{~cm}$
2 $20 \mathrm{~cm}$
3 $15 \mathrm{~cm}$
4 $30 \mathrm{~cm}$
WAVES

172314 The frequency of sinusoidal wave, 0.40 cos $(2000t+0.80)$ would be

1 $1000 \pi \mathrm{Hz}$
2 $2000 \mathrm{~Hz}$
3 $20 \mathrm{~Hz}$
4 $\frac{1000}{\pi} \mathrm{Hz}$
WAVES

172317 A hospital uses an ultrasonic scanner to locate tumours in a tissue. The operating frequency of the scanner is 4.2 MHz. The speed of sound in a tissue is $1.7 \mathrm{~km} / \mathrm{s}$. The wavelength of sound in tissue is close to

1 $4 \times 10^{-4}$
2 $8 \times 10^{-4}$
3 $4 \times 10^{-3}$
4 $8 \times 10^{-3}$
WAVES

172157 Consider following statements.

1 A, B, C are correct
2 Only B and C are correct
3 Only A and B are correct
4 Only A and C are correct
WAVES

172276 Identify the correct statement about a stationary wave.

1 Stationary wave is formed by superposition of two waves of different frequencies
2 The energy of oscillation is minimum at the antinode
3 Amplitude at the antinode is the same as that at the node
4 The pressure change is least at the antinode
WAVES

172289 If the velocity of sound in air is $300 \mathrm{~m} / \mathrm{s}$, then the distance between two successive nodes of a stationary wave of frequency $1000 \mathrm{~Hz}$ is

1 $10 \mathrm{~cm}$
2 $20 \mathrm{~cm}$
3 $15 \mathrm{~cm}$
4 $30 \mathrm{~cm}$
WAVES

172314 The frequency of sinusoidal wave, 0.40 cos $(2000t+0.80)$ would be

1 $1000 \pi \mathrm{Hz}$
2 $2000 \mathrm{~Hz}$
3 $20 \mathrm{~Hz}$
4 $\frac{1000}{\pi} \mathrm{Hz}$
WAVES

172317 A hospital uses an ultrasonic scanner to locate tumours in a tissue. The operating frequency of the scanner is 4.2 MHz. The speed of sound in a tissue is $1.7 \mathrm{~km} / \mathrm{s}$. The wavelength of sound in tissue is close to

1 $4 \times 10^{-4}$
2 $8 \times 10^{-4}$
3 $4 \times 10^{-3}$
4 $8 \times 10^{-3}$
WAVES

172157 Consider following statements.

1 A, B, C are correct
2 Only B and C are correct
3 Only A and B are correct
4 Only A and C are correct
WAVES

172276 Identify the correct statement about a stationary wave.

1 Stationary wave is formed by superposition of two waves of different frequencies
2 The energy of oscillation is minimum at the antinode
3 Amplitude at the antinode is the same as that at the node
4 The pressure change is least at the antinode
WAVES

172289 If the velocity of sound in air is $300 \mathrm{~m} / \mathrm{s}$, then the distance between two successive nodes of a stationary wave of frequency $1000 \mathrm{~Hz}$ is

1 $10 \mathrm{~cm}$
2 $20 \mathrm{~cm}$
3 $15 \mathrm{~cm}$
4 $30 \mathrm{~cm}$
WAVES

172314 The frequency of sinusoidal wave, 0.40 cos $(2000t+0.80)$ would be

1 $1000 \pi \mathrm{Hz}$
2 $2000 \mathrm{~Hz}$
3 $20 \mathrm{~Hz}$
4 $\frac{1000}{\pi} \mathrm{Hz}$
WAVES

172317 A hospital uses an ultrasonic scanner to locate tumours in a tissue. The operating frequency of the scanner is 4.2 MHz. The speed of sound in a tissue is $1.7 \mathrm{~km} / \mathrm{s}$. The wavelength of sound in tissue is close to

1 $4 \times 10^{-4}$
2 $8 \times 10^{-4}$
3 $4 \times 10^{-3}$
4 $8 \times 10^{-3}$