Wave and Wave characteristics
WAVES

172216 When a wave travels in a medium, the particle displacement is given by the equation $y=a$ sin $2 \pi(b t-c x)$ where $a, b$ and $c$ are constants. The maximum particle velocity will be twice the wave velocity, if

1 $\mathrm{c}=\frac{1}{\pi \mathrm{a}}$
2 $\mathrm{c}=\pi \mathrm{a}$
3 $b=a c$
4 $\mathrm{b}=\frac{1}{\mathrm{ac}}$
5 $a=b c$
WAVES

172217 In a sinusoidal wave, the time required for a particular point to move from maximum displacement to zero displacement is $0.14 \mathrm{~s}$. The frequency of the wave is

1 $0.42 \mathrm{~Hz}$
2 $2.75 \mathrm{~Hz}$
3 $1.79 \mathrm{~Hz}$
4 $0.56 \mathrm{~Hz}$
5 $3.5 \mathrm{~Hz}$
WAVES

172219 The speed of a wave is $360 \mathrm{~m} / \mathrm{s}$ and frequency is 500 Hz. Phase difference between two consecutive particles is $60^{\circ}$, then path difference between them will be :

1 $0.72 \mathrm{~cm}$
2 $120 \mathrm{~cm}$
3 $12 \mathrm{~cm}$
4 $7.2 \mathrm{~cm}$
WAVES

172220 Wavelength of wave is a distance between two particles which are differing in phase by

1 $\pi$
2 $2 \pi$
3 $\frac{2 \pi}{3}$
4 $\frac{\pi}{3}$
WAVES

172216 When a wave travels in a medium, the particle displacement is given by the equation $y=a$ sin $2 \pi(b t-c x)$ where $a, b$ and $c$ are constants. The maximum particle velocity will be twice the wave velocity, if

1 $\mathrm{c}=\frac{1}{\pi \mathrm{a}}$
2 $\mathrm{c}=\pi \mathrm{a}$
3 $b=a c$
4 $\mathrm{b}=\frac{1}{\mathrm{ac}}$
5 $a=b c$
WAVES

172217 In a sinusoidal wave, the time required for a particular point to move from maximum displacement to zero displacement is $0.14 \mathrm{~s}$. The frequency of the wave is

1 $0.42 \mathrm{~Hz}$
2 $2.75 \mathrm{~Hz}$
3 $1.79 \mathrm{~Hz}$
4 $0.56 \mathrm{~Hz}$
5 $3.5 \mathrm{~Hz}$
WAVES

172219 The speed of a wave is $360 \mathrm{~m} / \mathrm{s}$ and frequency is 500 Hz. Phase difference between two consecutive particles is $60^{\circ}$, then path difference between them will be :

1 $0.72 \mathrm{~cm}$
2 $120 \mathrm{~cm}$
3 $12 \mathrm{~cm}$
4 $7.2 \mathrm{~cm}$
WAVES

172220 Wavelength of wave is a distance between two particles which are differing in phase by

1 $\pi$
2 $2 \pi$
3 $\frac{2 \pi}{3}$
4 $\frac{\pi}{3}$
NEET Test Series from KOTA - 10 Papers In MS WORD WhatsApp Here
WAVES

172216 When a wave travels in a medium, the particle displacement is given by the equation $y=a$ sin $2 \pi(b t-c x)$ where $a, b$ and $c$ are constants. The maximum particle velocity will be twice the wave velocity, if

1 $\mathrm{c}=\frac{1}{\pi \mathrm{a}}$
2 $\mathrm{c}=\pi \mathrm{a}$
3 $b=a c$
4 $\mathrm{b}=\frac{1}{\mathrm{ac}}$
5 $a=b c$
WAVES

172217 In a sinusoidal wave, the time required for a particular point to move from maximum displacement to zero displacement is $0.14 \mathrm{~s}$. The frequency of the wave is

1 $0.42 \mathrm{~Hz}$
2 $2.75 \mathrm{~Hz}$
3 $1.79 \mathrm{~Hz}$
4 $0.56 \mathrm{~Hz}$
5 $3.5 \mathrm{~Hz}$
WAVES

172219 The speed of a wave is $360 \mathrm{~m} / \mathrm{s}$ and frequency is 500 Hz. Phase difference between two consecutive particles is $60^{\circ}$, then path difference between them will be :

1 $0.72 \mathrm{~cm}$
2 $120 \mathrm{~cm}$
3 $12 \mathrm{~cm}$
4 $7.2 \mathrm{~cm}$
WAVES

172220 Wavelength of wave is a distance between two particles which are differing in phase by

1 $\pi$
2 $2 \pi$
3 $\frac{2 \pi}{3}$
4 $\frac{\pi}{3}$
WAVES

172216 When a wave travels in a medium, the particle displacement is given by the equation $y=a$ sin $2 \pi(b t-c x)$ where $a, b$ and $c$ are constants. The maximum particle velocity will be twice the wave velocity, if

1 $\mathrm{c}=\frac{1}{\pi \mathrm{a}}$
2 $\mathrm{c}=\pi \mathrm{a}$
3 $b=a c$
4 $\mathrm{b}=\frac{1}{\mathrm{ac}}$
5 $a=b c$
WAVES

172217 In a sinusoidal wave, the time required for a particular point to move from maximum displacement to zero displacement is $0.14 \mathrm{~s}$. The frequency of the wave is

1 $0.42 \mathrm{~Hz}$
2 $2.75 \mathrm{~Hz}$
3 $1.79 \mathrm{~Hz}$
4 $0.56 \mathrm{~Hz}$
5 $3.5 \mathrm{~Hz}$
WAVES

172219 The speed of a wave is $360 \mathrm{~m} / \mathrm{s}$ and frequency is 500 Hz. Phase difference between two consecutive particles is $60^{\circ}$, then path difference between them will be :

1 $0.72 \mathrm{~cm}$
2 $120 \mathrm{~cm}$
3 $12 \mathrm{~cm}$
4 $7.2 \mathrm{~cm}$
WAVES

172220 Wavelength of wave is a distance between two particles which are differing in phase by

1 $\pi$
2 $2 \pi$
3 $\frac{2 \pi}{3}$
4 $\frac{\pi}{3}$