Home
Class 11
PHYSICS
Due to point isotropic sound source, the...

Due to point isotropic sound source, theintensity at a point is observed as 40 dB. The density of air is `rho=((15)/(11))(kg)/(m^3)` and velocity of sound in air is `330(m)/(s)`. Based on this information answer the following questions.
Q. The pressure amplitude at the observation point is

A

`3(N)/(m^2)`

B

`3xx10^3(N)/(m^2)`

C

`3xx10^-3(N)/(m^2)`

D

`6xx10^-2(N)/(m^2)`

Text Solution

Verified by Experts

The correct Answer is:
C

In the propagation of sound waves, let pressure amplitude be `trianglep_0` and displacement amplitude be `A`, then,
`trianglep_0=BAK`
where symbols have their usual meanings. We have
`FL=10log((I)/(I_0))`
`implies40=10log((I)/(10^(-12)))`
`impliesI=10^-8(W)/(m^2)`
`I=(trianglep_0^2)/(2rhov)`
`impliestrianglep_0=sqrt(Ixx2rhov)`
`=sqrt(10^-8xx2xx(15)/(11)xx330)(N)/(m^2)`
`=3xx10^-3(N)/(m^2)`
Promotional Banner

Topper's Solved these Questions

  • SOUND WAVES AND DOPPLER EFFECT

    CENGAGE PHYSICS|Exercise Integer|16 Videos
  • SOUND WAVES AND DOPPLER EFFECT

    CENGAGE PHYSICS|Exercise Assertion-Reasoning|24 Videos
  • RIGID BODY DYNAMICS 2

    CENGAGE PHYSICS|Exercise Interger|2 Videos
  • SUPERPOSITION AND STANDING WAVES

    CENGAGE PHYSICS|Exercise Comprehension Type|5 Videos

Similar Questions

Explore conceptually related problems

Due to point isotropic sound source, theintensity at a point is observed as 40 dB. The density of air is rho=((15)/(11))(kg)/(m^3) and velocity of sound in air is 330(m)/(s) . Based on this information answer the following questions. Q. The ratio of displacement amplitude of wave at observation point to wavelength of sound waves is

Due to a point isotropic sonic source, loudness at a point is L=60dB If density of air is rho=((15)/(11))(kg)/(m^3) and velocity of sound in air is v=33(m)/(s) , the pressure oscillation amplitude at the point of observation is [I_0=10^-12(W)/(m^2) ]

Due to a point isotropic sonic source, loudness at a point is L = 40 dB. If density of air is r = 15//11 kg m^(-3) and velocity of sound in air, u = 330 ms^(-1) , calculate. (i) pressure oscillation amplitude at the point of observation, and (ii) ratio oscillation amplitude of particle of medium to wavelength of sonic waves.

If the density of air at NTP is 1.293kg//m^(3) and gamma=1.41 , then the velocity of sound in air at NTP is :

Plane harmonic waves of frequency 500 Hz are produced in air with displacement amplitude of 10mum . Given that density of air is 1.29(kg)/(m^3) and speed of sound in air is 340(m)/(s) . Then

The velocity of sound in air at NTP is 330 m/s. What will be its value when temperature is doubled and pressure is halved ?

The velocity of sound in air at NTP is 330 m/s, What will be its value when temperature is tripled and pressure is halved ?

A blast given a sound of intensity 0.8 W//m^(2) at frequency 1kHz. If the denstiy of air is 1.3 kg//m^(3) and speed of sound in air is 330 m/s, then the amplitude of the sound wave is approximately

How many degress of freedom have the gas molecules, if under standard conditions the gas density is rho = 1.3 kg//m^3 and velocity of sound propagation o it is v = 330m//s ?

Calculate the intensity of a note of frequency 1000 Hz if the amplitude of vibration is 10^(-9) cm . Density of air = 1.3 kg m^(-3) and velocity of sound = 340 m s^(-1)

CENGAGE PHYSICS-SOUND WAVES AND DOPPLER EFFECT-Comprehension
  1. An indian submarine is moving in the Arabian sea with constant velocit...

    Text Solution

    |

  2. An indian submarine is moving in the Arabian sea with constant velocit...

    Text Solution

    |

  3. Due to point isotropic sound source, theintensity at a point is observ...

    Text Solution

    |

  4. Due to point isotropic sound source, the intensity at a point is obser...

    Text Solution

    |

  5. In the figure shown below, a source of sound having power 12xx10^-6W i...

    Text Solution

    |

  6. In the figure shown below, a source of sound having power 12xx10^-6W i...

    Text Solution

    |

  7. In the figure shown below, a source of sound having power 12xx10^-6W i...

    Text Solution

    |

  8. When a sound wave enters the ear, it sets the eardrum into oscillation...

    Text Solution

    |

  9. When a sound wave enters the ear, it sets the eardrum into oscillation...

    Text Solution

    |

  10. When a sound wave enters the ear, it sets the eardrum into oscillation...

    Text Solution

    |

  11. When a sound wave enters the ear, it sets the eardrum into oscillation...

    Text Solution

    |

  12. When a sound wave enters the ear, it sets the eardrum into oscillation...

    Text Solution

    |

  13. A source of sound and detector are arranged as shown in Fig. The detec...

    Text Solution

    |

  14. A source of sound and detector are arranged as shown in Fig. The detec...

    Text Solution

    |

  15. A source of sound and detector are arranged as shown in Fig. The detec...

    Text Solution

    |

  16. As shown if Fig. a vibrating tuning fork of frequency 512 Hz is moving...

    Text Solution

    |

  17. As shown if Fig. a vibrating tuning fork of frequency 512 Hz is moving...

    Text Solution

    |

  18. As shown if Fig. a vibrating tuning fork of frequency 512 Hz is moving...

    Text Solution

    |

  19. As shown if Fig. a vibrating tuning fork of frequency 512 Hz is moving...

    Text Solution

    |

  20. A source of sound with natural frequency f0=1800Hz moves uniformly alo...

    Text Solution

    |